Apparatus and method for distribution of high quality image and audio programs to remote locations
115 claims: 32 independent, 83 dependent
- 1Sposób rozprowadzania informacji obrazu i dźwięku do miejsc obrazowania, przy czym stosuje się obraz nieruchomy lub ruchomy, znamienny tym, że niezależnie odbiera się i pamięta się skompresowane i zaszyfrowane informacje cyfrowe obrazu i dźwięku, związane z co najmniej jednym programem obrazowym i co najmniej jednym programem dźwiękowym dla prezentacji w co najmniej jednym wybranym z góry czasie w każdym audytorium (128), niezależnie rozprowadza się zapamiętane informacje obrazu i dźwięku do jednego lub więcej audytoriów (128), niezależnie deszyfruje się i dekompresuje się zapamiętane informacje obrazu i dźwięku w każdym audytorium (128), odbiera się deszyfrowane i dekompresowane informacje obrazu w co najmniej jednym dołączonym systemie projekcyjnym i prezentuje się jeden spośród co najmniej jednego programu obrazowego oraz odbiera się PL 193 224 B1 deszyfrowane i dekompresowane informacje dźwięku i selektywnie odtwarza się jeden spośród co najmniej jednego programu dźwiękowego synchronicznie z prezentowanym programem obrazowym.
- 2Sposób według zastrz. 1, znamienny tym, że zapamiętuje się skompresowane informacje obrazu i dźwięku w sposób nieciągły, niezależnie od siebie.
- 3Sposób według zastrz. 1albo 2, znamienny tym, że informacje obrazu i dźwięku kompresuje się zdalnie.
- 4Sposób według zastrz. 1albo 2, znamienny tym, że generuje się obrazy cyfrowe przy użyciu systemu generacji (108) obrazu cyfrowego.
- 5Sposób według zastrz. 4, znamienny tym, że utrwala się, szyfruje się, kompresuje się i rozsyła się obrazy cyfrowe z systemu generacji (108) obrazu cyfrowego do wybranych z góry autoryzowanych systemów prezentacji przez urządzenie centralne (102) zasadniczo jednocześnie z digitalizacją obrazów.
- 6Sposób według zastrz. 1, znamienny tym, że zapamiętuje się skompresowane i zaszyfrowane informacje obrazu i dźwięku w urządzeniu centralnym (102) dla przekazania w późniejszym określonym z góry czasie.
- 7Sposób według zastrz. 1albo 2, znamienny tym, że informację dźwiękową kompresuje się ze zmienną szybkością.
- 8Sposób według zastrz. 7, znamienny tym, że kompresuje się i przekazuje się programy dźwiękowe związane z informacją obrazu segregowaną w czasie względem odpowiedniego obrazu przy użyciu identyfikatora do łączenia jednego lub więcej wybranych z góry programów dźwiękowych zco najmniej jednym wybranym z góry programem obrazowym zależnie od potrzeb prezentacji.
- 9Sposób według zastrz. 8, znamienny tym, że stosuje się każdy z programów dźwiękowych z wieloma ścieżkami dźwiękowymi, prezentowanymi z tym samym programem obrazowym podczas różnych prezentacji.
- 10Sposób według zastrz. 8 albo 9, znamienny tym, że informację obrazu kompresuje się ze zmienną szybkością.
- 11Sposób według zastrz. 1, znamienny tym, że odbiera się informację klucza kryptograficznego, konieczną do deszyfrowania, w czasie oddzielnym od odbioru skompresowanej i zaszyfrowanej informacji.
- 12Sposób według zastrz. 11, znamienny tym, że wskazuje się okres czasu, w którym informacja klucza kryptograficznego jest ważna i zapewniania się, że klucz jest stosowany tylko w ciągu tego okresu.
- 13Sposób według zastrz. 12, znamienny tym, że zapisuje się kasując informację klucza kryptograficznego w miejscu pamięci po upływie tego okresu czasu.
- 14Sposób według zastrz. 11 albo 12 albo 13, znamienny tym, że odbiera się co najmniej jeden znak wodny, który jest niezauważalny podczas prezentacji informacji obrazu lub dźwięku przy określonej z góry normalnej szybkości przesyłania, lecz jest wykrywalny, gdy ta informacja obrazu lub dźwięku jest prezentowana z szybkością zasadniczo różną od szybkości normalnej.
- 15Sposób według zastrz. 14, znamienny tym, że konfiguruje się znak wodny dla identyfikacji zarówno czasu prezentacji, jak i miejsca informacji obrazu lub dźwięku.
- 16Sposób według zastrz. 15, znamienny tym, że moduluje się i przesyła się zaszyfrowaną i skompresowaną informację przez bezprzewodowe łącze telekomunikacyjne między urządzeniem centralnym (102) i systemami prezentacji.
- 17Sposób według zastrz. 16, znamienny tym, że rozsyła się informację do dowolnego jednego lub więcej spośród wielu audytoriów (128) dla umożliwienia wielu prezentacji informacji w różnych audytoriach (128) w tym samym czasie.
- 18Sposób według zastrz. 16 albo 17, znamienny tym, że stosuje się daną szybkość przesyłania skompresowanej informacji, która nie jest równa szybkości przesyłania, z jaką informacja jest kompresowana.
- 19Sposób według zastrz. 18, znamienny tym, że stosuje się szybkość przesyłania, która jest równa szybkości przesyłania, z jaką informacja jest kompresowana.
- 20Sposób według zastrz. 19, znamienny tym, że dołącza się informację sumy kontrolnej do przesyłanej informacji dla wykrycia bloków transmitowanej informacji, w której występują błędy transmisji.
- 21Sposób według zastrz. 19 albo 20, znamienny tym, że stosuje się co najmniej jednego satelitę (106) do przekazywania informacji do systemów prezentacji i umieszcza się odpowiednio co najmniej jeden satelitarny terminal odbiorczy w urządzeniu centralnym (102) i kontroluje się jakość kanału satelitarnego stosowanego do przesyłania informacji, dla regulacji charakterystyk przesyłowych kanału satelitarnego dla utrzymania żądanego poziomu jakości. PL 193 224 B1
- 22Sposób według zastrz. 21, znamienny tym, że wymienia się dane przez dwukierunkowe łącze przesyłowe umieszczone między urządzeniem centralnym (102) i systemami prezentacji.
- 23Sposób według zastrz. 22, znamienny tym, że stosuje się wymieniane dane do celów zabezpieczenia kryptograficznego.
- 24Sposób według zastrz. 22 albo 23, znamienny tym, że żąda się ponownej transmisji skompresowanej informacji odebranej z błędami w systemie prezentacji.
- 25Sposób według zastrz. 24, znamienny tym, że ponownie przesyła się skompresowaną informację odebraną z błędami w systemie prezentacji poprzez łącze dwukierunkowe.
- 26Sposób według zastrz. 25, znamienny tym, że jako dane stosuje się różne wejściowe sygnały kontrolne i sterujące oraz rozkazy przesyłane między urządzeniem centralnym (102) i systemami prezentacji.
- 27Sposób według zastrz. 25 albo 26, znamienny tym, że za pomocą systemu zarządzania (112) siecią realizuje się sterowanie operacyjne każdym systemem zarządzania (112) siecią systemów prezentacji do prezentowania obrazów dla obrazowania w dozwolonych okresach czasu i miejscach.
- 28Sposób według zastrz. 27, znamienny tym, że konfiguruje się każdy system prezentacji jako kinoteatr (104) z co najmniej jednym audytorium (128).
- 29Sposób według zastrz. 28, znamienny tym, że rozsyła się skompresowaną informację do wybranych z góry audytoriów (128) spośród wielu audytoriów (128) w kompleksie kinoteatru (104) w danym czasie.
- 30Sposób według zastrz. 11 albo 12 albo 13 albo 14 albo 15, znamienny tym, że wykrywa się fizyczne wtargnięcie do systemu projekcyjnego dla systemu audytoryjnego (128A - 128M) i kasuje się informację klucza kryptograficznego, gdy wykrywa się wtargnięcia.
- 31Sposób według zastrz. 16, znamienny tym, że przesyła się zaszyfrowaną i skompresowaną informację pojedynczego programu obrazowego z centralnego systemu pamięciowego do różnych audytoriów (128) w kompleksie wielu audytoriów (128) kinoteatru (104) z wybranymi z góry, programowalnymi przesunięciami czasowymi względem siebie.
- 32Sposób według zastrz. 31, znamienny tym, że redukuje się wybrane z góry programowalne przesunięcia zasadniczo do zera, tak że pojedynczy program jest prezentowany w różnych audytoriach (128) zasadniczo jednocześnie.
- 33Sposób według zastrz. 28 albo 29, znamienny tym, że pamięta się skompresowaną i zaszyfrowaną informację obrazu i dźwięku, którą stosuje się do tworzenia imprez prezentacji w jednym lub więcej audytoriów (128) w centralnym systemie pamięciowym kinoteatru.
- 34Sposób według zastrz. 33, znamienny tym, że stosuje się układ urządzeń pamięciowych z nośnikiem magnetycznym jako centralny system pamięciowy kinoteatru.
- 35Sposób według zastrz. 34, znamienny tym, że stosuje się informację parzystości do dołączenia różnych wybranych z góry części kompresowanej informacji do różnych spośród tych urządzeń podczas zapamiętywania i do pojedynczego audytorium (128) przy odzyskiwaniu.
- 36Sposób według zastrz. 34 albo 35, znamienny tym, że równolegle „zapisuje się paskowo odbieraną informację w całym układzie urządzeń pamięciowych dla żądanej szybkości przesyłania danych i redundancji dla ochrony przed błędami.
- 37Sposób według zastrz. 36, znamienny tym, że zapamiętuje się historię obrazowania autoryzowanych programów prezentowanych w każdym audytorium (128) i informuje się o tej historii urządzenie centralne (102).
- 38Sposób według zastrz. 37, znamienny tym, że tworzy się zbiory programów z jednego lub więcej odebranych indywidualnych programów obrazu i dźwięku, dla prezentacji w systemie audytoryjnym (128A - 128M) podczas autoryzowanego okresu.
- 39Sposób według zastrz. 38, znamienny tym, że stosuje się automatyczne rozprowadzanie, pamiętanie i prezentowanie programów przy programowalnym sterowaniu przez urządzenie centralne (102).
- 40Sposób według zastrz. 38 albo 39, znamienny tym, że steruje się niektórymi wybranymi z góry operacjami sieci z miejsca odległego od urządzenia centralnego (102).
- 41Sposób według zastrz. 40, znamienny tym, że rozprowadza się zapamiętaną informację do jednego lub więcej spośród wielu miejsc audytoriów (128) dla prezentacji publiczności poprzez system sieci lokalnej kinoteatru.
- 42Sposób według zastrz. 41, znamienny tym, że dostarcza się informację obrazu w postaci programów obrazowych, które są w postaci albo pojedynczej nieruchomej klatki albo serii klatek przedstawionych jako filmy o różnej długości. PL 193 224 B1
- 43Sposób według zastrz. 29, znamienny tym, że podczas przesyłania zapamiętuje się skompresowaną i zaszyfrowaną informację cyfrową w urządzeniu centralnym (102), odzyskuje się zapamiętaną informację na przenośnym nośniku pamięciowym dla fizycznego rozprowadzania do systemów prezentacji oraz odzyskuje się zapamiętaną informację na nośniku i przesyła się ją do pamięci systemu prezentacji.
- 44Sposób według zastrz. 43, znamienny tym, że archiwuje się nośnik w urządzeniu centralnym (102).
- 45Sposób według zastrz. 43, znamienny tym, że archiwuje się nośnik w systemie prezentacji.
- 46Urządzenie do rozprowadzania informacji obrazu i dźwięku do miejsc obrazowania, przy czym obraz jest obrazem nieruchomym lub ruchomym, znamienne tym, że zawiera układ niezależnego odbioru i pamiętania skompresowanych i zaszyfrowanych informacji cyfrowych obrazu i dźwięku, związanych z co najmniej jednym programem obrazowym i co najmniej jednym programem dźwiękowym dla prezentacji w co najmniej jednym wybranym z góry czasie, układ niezależnego rozprowadzania zapamiętanych informacji obrazu i dźwięku do jednego lub więcej audytoriów (128), układ niezależnego deszyfrowania zapamiętanych informacji obrazu i dźwięku w każdym audytorium (128), układ niezależnej dekompresji zapamiętanych informacji obrazu i dźwięku w każdym audytorium (128), co najmniej jeden system projekcyjny dołączony dla odbioru deszyfrowanych i dekompresowanych informacji obrazu i obecnego co najmniej jednego programu obrazowego oraz co najmniej jeden system dźwiękowy dołączony dla odbioru deszyfrowanych i dekompresowanych informacji dźwięku i selektywnego odtwarzania co najmniej jednego programu dźwiękowego synchronicznie z prezentowanym programem obrazowym.
- 47Urządzenie według zastrz. 46, znamienne tym, że zawiera system generacji (108) obrazów cyfrowych do generowania obrazów cyfrowych.
- 48Urządzenie według zastrz. 46, znamienne tym, że zawiera układ pamiętania zaszyfrowanej i skompresowanej informacji obraził i dźwięku w centralnym systemie pamięciowym dla przekazania w późniejszym określonym z góry czasie.
- 49Urządzenie według zastrz. 48, znamienne tym, że zawiera układ przekazywania programów dźwiękowych związanych z informacją obrazu, segregowanych w czasie względem odpowiedniego programu obrazowego, przy użyciu identyfikatora do łączenia jednego lub więcej wybranych z góry programów dźwiękowych z co najmniej jednym wybranym z góry programem obrazowym zgodnie z żądaną prezentacją.
- 50Urządzenie według zastrz. 46, znamienne tym, że zawiera układ odbioru informacji klucza kryptograficznego, koniecznej do deszyfrowania informacji w oddzielnym czasie niż odbiór skompresowanej i zaszyfrowanej informacji.
- 51Urządzenie według zastrz. 50, znamienne tym, że zawiera układ pamiętania i przesyłania informacji klucza kryptograficznego, koniecznej do deszyfrowania, do autoryzowanych audytoriów (128) w czasie oddzielnym niż rozprowadzanie skompresowanej i zaszyfrowanej informacji.
- 52Urządzenie według zastrz. 50 albo 51, znamienne tym, że zawiera układ wskazywania okresu czasu, w którym informacja klucza kryptograficznego jest ważna i do zapewniania, że klucz jest stosowany tylko w tym okresie.
- 53Urządzenie według zastrz. 52, znamienne tym, że zawiera układ zapisu kasującego informacji klucza kryptograficznego w miejscu pamięci po upływie tego okresu czasu.
- 54Urządzenie według zastrz. 53, znamienne tym, że zawiera układ odbioru co najmniej jednego znaku wodnego, który jest niezauważalny podczas prezentacji informacji obrazu i dźwięku z określoną z góry normalną szybkością przesyłania, lecz jest wykrywalny, gdy informacja obrazu lub dźwięku jest prezentowana z szybkością zasadniczo różną od normalnej szybkości.
- 55Urządzenie według zastrz. 48 albo 53 albo 54, znamienne tym, że zawiera system modulacji i transmisji do zestawienia bezprzewodowego łącza telekomunikacyjnego do przesyłania informacji między urządzeniem centralnym (102) i systemami prezentacji.
- 56Urządzenie według zastrz. 55, znamienne tym, że układ przesyłania zawiera układ rozsyłania skompresowanej informacji do dowolnego jednego lub więcej audytoriów (128) dla wielokrotnej prezentacji informacji w różnych audytoriach (128) w tym samym czasie.
- 57Urządzenie według zastrz. 56, znamienne tym, że układ przesyłania zawiera co najmniej jednego satelitę (106), przy czym urządzenie dodatkowo zawiera co najmniej jeden satelitarny terminal odbiorczy w urządzeniu centralnym (102), do kontroli jakości kanału satelitarnego stosowanego do PL 193 224 B1 przesyłania informacji, dla regulacji charakterystyk przesyłowych kanału satelitarnego dla utrzymania żądanego poziomu jakości.
- 58Urządzenie według zastrz. 57, znamienne tym, że zawiera dwukierunkowe łącze przesyłowe umieszczone między urządzeniem centralnym (102) i systemami prezentacji, przez które następuje wymiana danych.
- 59Urządzenie według zastrz. 58, znamienne tym, że zawiera układ ponownego przesyłania skompresowanej informacji, odebranej z błędami, łączem dwukierunkowym przez system prezentacji.
- 60Urządzenie według zastrz. 59, znamienne tym, że zawiera system zarządzania (112) siecią systemów prezentacji do prezentowania obrazów obrazowanych w dozwolonych okresach czasu i miejscach.
- 61Urządzenie według zastrz. 60, znamienne tym, że system zarządzania (112) siecią realizuje sterowanie operacyjne każdego systemu prezentacji.
- 62Urządzenie według zastrz. 46, znamienne tym, że każdy system prezentacji zawiera kinoteatr (104) z co najmniej jednym audytorium (128) .
- 63Urządzenie według zastrz. 46, znamienne tym, że zawiera co najmniej jeden dekoder/deszyfrator zintegrowany z każdym systemem projekcyjnego obrazu w każdym audytorium (128) dla zapobiegania odgałęzienia podsłuchowego i kopiowania obrazów.
- 64Urządzenie według zastrz. 51 albo 63, znamienne tym, że zawiera układ wykrywania fizycznego wtargnięcia do systemu projekcyjnego systemu audytoryjnego (128A - 128M) i kasowania informacji klucza kryptograficznego przy wykryciu takiego wtargnięcia.
- 65Urządzenie według zastrz. 64, znamienne tym, że układ rozprowadzania jest skonfigurowany do rozprowadzania skompresowanych i zaszyfrowanych informacji obrazu i dźwięku dla pojedynczego programu obrazu spośród różnych audytoriów (128) z wybranymi z góry programowalnymi przesunięciami czasowymi względem siebie.
- 66Urządzenie według zastrz. 65, znamienne tym, że zawiera centralny system pamięciowy kinoteatru do pamiętania skompresowanych i zaszyfrowanych informacji obrazu i dźwięku stosowanej do tworzenia prezentacji w jednym lub więcej audytoriach (128) .
- 67Urządzenie według zastrz. 66, znamienne tym, że centralny system pamięciowy kinoteatru zawiera bank danych współużytkowany przez wiele audytoriów (128) .
- 68Urządzenie według zastrz. 67, znamienne tym, że bank danych zawiera układ urządzeń pamięciowych nośnika magnetycznego i układ stosowania informacji parzystości do łączenia różnych wybranych z góry części skompresowanej i zaszyfrowanej informacji dla różnych urządzeń podczas zapisu i dla pojedynczego audytorium (128) przy odzyskiwaniu.
- 69Urządzenie według zastrz. 68, znamienne tym, że centralny system pamięciowy kinoteatru zawiera układ równoległego zapisu paskowego odbieranej informacji w całym układzie urządzeń pamięciowych dla zapewnienia żądanej szybkości przesyłania danych i redundancji zabezpieczenia przed błędami.
- 70Urządzenie według zastrz. 68 albo 69, znamienne tym, że zawiera układ pamiętania historii obrazowania autoryzowanych programów prezentowanych w audytorium (128) i informowania o tej historii urządzenia centralnego (102).
- 71Urządzenie według zastrz. 70, znamienne tym, że zawiera system zarządzania kinoteatrem do operacyjnego sterowania i kontroli audytoriów (128) w kompleksie kinoteatru (104).
- 72Urządzenie według zastrz. 71, znamienne tym, że system zarządzania kinoteatrem dodatkowo zawiera elementy sterowania programem do tworzenia danych reprezentujących zbiory programów z danych reprezentujących jeden lub więcej odebranych indywidualnych programów obrazowych, które są w harmonogramie prezentacji w systemie audytoryjnym (128A - 128M) podczas okresu autoryzacji.
- 73Urządzenie według zastrz. 71 albo 72, znamienne tym, że zawiera układ automatycznego rozprowadzania, pamiętania i prezentowania programów przy programowalnym sterowaniu urządzeniem centralnym (102).
- 74Urządzenie według zastrz. 73, znamienne tym, że zawiera układ automatycznego rozprowadzania, pamiętania i prezentowania programów przy programowalnym sterowaniu przez element sterujący odległy od urządzenia centralnego (102).
- 75Urządzenie według zastrz. 74, znamienne tym, że zawiera układ sterowania pewnymi wybranymi z góry operacjami sieci z miejsca odległego od urządzenia centralnego (102).
- 76Urządzenie według zastrz. 74 albo 75, znamienne tym, że zawiera system lokalnej sieci kinoteatru do rozprowadzania pamiętanej informacji do jednego lub więcej z wielu audytoriów (128). PL 193 224 B1
- 77Urządzenie według zastrz. 76, znamienne tym, że układ przesyłania zawiera układ pamiętania skompresowanej i zaszyfrowanej informacji w urządzeniu centralnym (102) i układ odzyskiwania pamiętanej informacji na przenośnym nośniku pamięciowym dla rozprowadzania fizycznego do systemów prezentacji.
- 78Urządzenie według zastrz. 77, znamienne tym, że zawiera układ archiwowania nośnika w urządzeniu centralnym (102).
- 79Urządzenie według zastrz. 77 albo 78, znamienne tym, że zawiera układ archiwowania nośnika w systemie prezentacji.
- 80Sposób przesyłania danych obrazu do wybranych miejsc, znamienny tym, że odbiera się dane obrazu, kompresuje się odbierane dane obrazu, szyfruje się skompresowane dane obrazu tak, że zaszyfrowane dane obrazu towarzyszą danym identyfikującym wybrane miejsca i za pomocą klucza szyfrowania deszyfruje się dane oraz przesyła się zaszyfrowane dane obrazu przez nośnik transmisyjny, przy czym klucz szyfrowania przesyła się niezależnie od zaszyfrowanych danych.
- 81Sposób według zastrz. 80, znamienny tym, że klucz szyfrowania wyprowadza się dla przesyłania w różnym czasie niż zaszyfrowane dane obrazu.
- 82Sposób według zastrz. 80 albo 81, znamienny tym, że odtwarzanie programu obrazowego w wybranym miejscu autoryzuje się przez określony z góry okres, a klucz szyfrowania wyprowadza się dla przesyłania na krótko przed początkiem określonego z góry okresu.
- 83Sposób według zastrz. 82, znamienny tym, że za pomocą kluczą szyfrowania ogranicza się odtwarzanie tylko do określonego z góry okresu.
- 84Sposób według zastrz. 83, znamienny tym, że zaszyfrowane dane obrazu rozprowadza się przez nośnik rozsyłowy.
- 85Sposób według zastrz. 84, znamienny tym, że klucz szyfrowania przesyła się przez nośnik różny od nośnika rozsyłowego.
- 86Sposób według zastrz. 82 albo 83 albo 84, znamienny tym, że dodaje się znak wodny do zaszyfrowanych danych obrazu.
- 87Sposób według zastrz. 86, znamienny tym, że stosuje się znak wodny zawierający dane reprezentujące identyfikator specyficzny dla miejsca i/lub specyficzny dla czasu w miejscach pseudolosowych w zaszyfrowanych danych obrazu.
- 88Sposób według zastrz. 87, znamienny tym, że konfiguruje się znak wodny dla wskazywania autoryzowanego miejsca i czasu do prezentacji programu obrazowego reprezentowanego przez zaszyfrowane dane obrazu.
- 89Sposób według zastrz. 87 albo 88, znamienny tym, że zaszyfrowane dane obrazu przesyła się przez transmisyjny nośnik rozsyłowy.
- 90Sposób według zastrz. 89, znamienny tym, że zaszyfrowane dane obrazu przesyła się z szybkością przesyłania zależną od charakterystyk obrazu przez nie reprezentowanego i charakterystyk nośnika transmisyjnego.
- 91Urządzenie do przesyłania danych obrazu do wybranych miejsc, znamienne tym, że zawiera urządzenie wejściowe do odbioru danych obrazu, kompresor danych do kompresji odebranych danych obrazu, szyfrator danych do szyfrowania danych skompresowanego obrazu, tak, że zaszyfrowanym danym obrazu towarzyszą dane identyfikujące wybrane miejsca i klucz szyfrowania do umożliwienia deszyfrowania danych oraz nadajnik do nadawania zaszyfrowanych danych obrazu i zaszyfrowanego klucza przez nośnik transmisyjny, przy czym szyfrator danych jest przystosowany do wyprowadzania klucza szyfrowania dla przesyłania niezależnie zaszyfrowanych danych obrazu.
- 92Urządzenie według zastrz. 91, znamienne tym, że szyfrator danych jest przystosowany do dodania znaku wodnego do zaszyfrowanych danych.
- 93Urządzenie według zastrz. 92, znamienne tym, że nadajnik jest przystosowany do nadawania zaszyfrowanych danych obrazu poprzez rozsyłowy nośnik transmisyjny.
- 94Urządzenie według zastrz. 93, znamienne tym, że nadajnik jest przystosowany do nadawania zaszyfrowanych danych obrazu z szybkością przesyłania zależną od charakterystyk reprezentowanego przez nie programu obrazowego i od charakterystyk nośnika transmisyjnego.
- 95Sposób wyświetlania programów obrazowych reprezentowanych przez dane obrazu przesyłane przez nośnik transmisyjny, znamienny tym, że odbiera się zaszyfrowane dane obrazu, przesyłane przez nośnik transmisyjny i reprezentujące programy obrazowe dla obrazowania i dla niezależnego odbioru klucza szyfrowania, deszyfruje się zaszyfrowane dane obrazu przy użyciu odebranego klucza PL 193 224 B1 szyfrowania oraz rozprowadza się deszyfrowane dane do wybranych urządzeń do wyświetlania obrazu podczas prezentacji.
- 96Sposób według zastrz. 95, znamienny tym, że klucz szyfrowania odbiera się w różnym czasie niż zaszyfrowane dane obrazu.
- 97Sposób według zastrz. 95 albo 96, znamienny tym, że klucz szyfrowania przystosowuje się do ograniczania odtwarzania tylko do określonego z góry okresu czasu, a deszyfrowanie przeprowadza się tylko podczas tego określonego z góry okresu.
- 98Sposób według zastrz. 96, znamienny tym, że zaszyfrowane dane obrazu odbiera się selektywnie z nośnika rozsyłowego.
- 99Sposób według zastrz. 98, znamienny tym, że klucz szyfrowania odbiera się z nośnika różnego od nośnika rozsyłowego.
- 100Sposób według zastrz. 97 albo 98, znamienne tym, że mierzy się parametry jakościowe odbieranych danych i wyprowadza się żądania ponownej transmisji części zaszyfrowanych danych obrazu w przypadku, gdy parametry jakościowe spadają poniżej określonych z góry wartości.
- 101Sposób według zastrz. 100, znamienny tym, że porównuje się podpisy cyfrowe w częściach zaszyfrowanych danych obrazu i do żądania ponownej transmisji tych części, jeżeli podpisy cyfrowe są nieprawidłowe.
- 102Sposób według zastrz. 101, znamienny tym, że zastępuje się części zaszyfrowanych danych obrazu z nieprawidłowymi podpisami cyfrowymi przez części z prawidłowymi podpisami cyfrowymi po ponownej ich transmisji.
- 103Sposób według zastrz. 100 albo 101, znamienny tym, że zapamiętuje się deszyfrowane dane obrazu dla ich następnego rozdzielania do wybranych urządzeń wyświetlających.
- 104Sposób według zastrz. 103, znamienny tym, że rozprowadza się dekodowane dane obrazu do wielu urządzeń wyświetlających dla jednoczesnego wyświetlania w nich programów obrazowych.
- 105Sposób według zastrz. 103, znamienny tym, że deszyfrowane dane obrazu rozprowadza się do wielu urządzeń wyświetlających dla wyświetlania ze względnym opóźnieniem w czasie programów obrazowych.
- 106Sposób według zastrz. 103, znamienny tym, że zapamiętuje się zaszyfrowane dane obrazu przed określonym z góry okresem, a zaszyfrowane dane obrazu deszyfruje się dla wyświetlania obrazów reprezentowanych przez nie podczas określonego z góry okresu.
- 107Sposób według zastrz. 104 albo 105 albo 106, znamienny tym, że rejestruje się historię imprez prezentacji.
- 108Urządzenie do wyświetlania programów obrazowych reprezentowanych przez dane obrazu przesyłane przez nośnik transmisyjny, znamienne tym, że zawiera odbiornik do odbioru zaszyfrowanych danych obrazu, przesyłanych przez nośnik transmisyjny i reprezentujących program obrazowy dla obrazowania i dla niezależnego odbioru klucza szyfrowania, deszyfrator danych do deszyfrowania zaszyfrowanych danych obrazu przy użyciu odebranego klucza szyfrowania, wiele urządzeń do wyświetlania obrazów oraz sieć rozsyłową do rozprowadzania deszyfrowanych danych obrazu do wybranych urządzeń do wyświetlania obrazu podczas prezentacji.
- 109Urządzenie według zastrz. 107 albo 108, znamienne tym, że klucz szyfrowania jest przystosowany do ograniczania odtwarzania tylko do określonego z góry okresu czasu, a deszyfrator danych jest przystosowany do reakcji na klucz szyfrowania dla deszyfrowania zaszyfrowanych danych obrazu tylko podczas tego określonego z góry okresu.
- 110Urządzenie według zastrz. 107, znamienne tym, że zawiera procesor zarządzający do pomiaru parametrów jakościowych odbieranych danych i wyprowadzania żądania ponownej transmisji części zaszyfrowanych danych obrazu.
- 111Urządzenie według zastrz. 110, znamienne tym, że procesor zarządzający jest przystosowany do porównywania podpisów cyfrowych w częściach zaszyfrowanych danych obrazu i do żądania ponownej transmisji tych części, jeżeli podpisy cyfrowe są nieprawidłowe.
- 112Urządzenie według zastrz. 111, znamienne tym, że procesor zarządzający jest przystosowany do zastępowania części zaszyfrowanych danych obrazu z nieprawidłowymi podpisami cyfrowymi przez części z prawidłowymi podpisami cyfrowymi po ponownej ich transmisji.
- 113Urządzenie według zastrz. 111 albo 112, znamienne tym, że zawiera układ pamięciowy do pamiętania deszyfrowanych danych obrazu dla ich następnego rozdzielania do wybranych urządzeń wyświetlających. PL 193 224 B1
- 114Urządzenie według zastrz. 113, znamienne tym, że układ pamięciowy jest przystosowany do pamiętania zaszyfrowanych danych obrazu przed określonym z góry okresem, a deszyfrowany obraz jest przystosowany do deszyfrowania zaszyfrowanych danych obrazu z układu pamięciowego dla wyświetlania reprezentowanych przez nie programów obrazowych podczas określonego z góry okresu.
- 115Urządzenie według zastrz. 114, znamienne tym, że zawiera rejestrator do rejestrowania historii imprez prezentacji.
Independent claims115
266 paragraphs in 13 sections, as filed
Description of the invention
The present invention relates to a method and device for distributing image and sound information, a method and device for transmitting image data, and a method and device for displaying image programs at imaging sites using electronic audiovisual processing, in particular for distributing digital images, both still and moving, and audio information to various locations for presentations. The invention is implemented by encoding, encrypting, transmitting, storing, decompressing, decrypting, and playing high definition audiovisual programs from a central device to a plurality of display projectors or presentation systems.
It is known to use celluloid film copying, distribution and projection to deliver creative programming material to geographically dispersed movie theaters in the country and the world.
A known system for copying and distributing a film is shown in Fig. I. Copying a movie usually starts with a very high quality negative from the camera. At the 50 movie studio, the 52 movie editor makes a master copy of the movie after the original movie production process is complete. The film copying department 54 prepares the so-called distribution negative from which distribution copies are made in large numbers, called positives. Depending on the size of the dissemination, that is, the number of copies needed to distribute the movie, there are multiple stages or multiple copies made at each stage. The film positives are delivered by couriers and by other physical means to cinemas, such as cinema theater 56, where the film is displayed by projecting film images onto the imaging surface using a film projector 58. In this traditional system, typically a multi-track audio program is created by means of the audio editing system 51, copied onto the film along with the images, and the audio track is played in a cinema sound installation 57 in sync with a moving image in a cinema projection system.
In the distribution process presented in Fig. And there are internal limitations. As a result of the use of celluloid material and the limitation of the bandwidth of film media, there are limitations in the realization of high quality multi-channel audio programs. In addition, there are complications with making a large number of film copies. There is also the complexity and delays associated with physically distributing large cans of celluloid film into an ever-increasing number of kin-theaters. Another growing trend in relation to cinema theaters is the development of complexes of cinema theaters, so-called multi-cinemas, in which many auditoriums are located in one place, each of which is shown at the same time a different film. Due to the large number of copies made, it becomes more and more difficult to prevent illegal copying and theft of the material, and the copied material degrades over time due to dust accumulation, wear and tear, thermal changes and other factors.
Emerging techniques are being developed in a way that allows an alternative approach to the existing problems of film distribution. For example, advances in digital technology have led to the revolutionary concept whereby program material is transmitted in an electronically stored digital format rather than on optical film media. Digital images are distributed on various magnetic carriers or on optical compact discs, or transmitted via wire, fiber optic, radio or satellite telecommunications systems. However, alternative distribution techniques, including digital methods, are unable to provide the image quality achievable with celluloid film. These techniques typically operate with audiovisual signals recorded on a variety of magnetic or optical media for display on video monitors, televisions, or projection equipment. They do not provide high quality video due to bandwidth limitation.
The known methods of satellite transmission are currently not industrially sufficiently developed for the distribution of high-quality audiovisual material. Since the distribution of cinematographic program material is essentially a special type of continental-sized broadcasting, a satellite distribution method may be used for such a large film distribution area. However, in order to transmit a very high quality audiovisual signal in real time, the data rate requirements are in the order of 1.5 billion bits per second. Such a high data transmission rate requires a bandwidth equivalent to the entire satellite, with the transmission of even only one program, which is very wasteful. Apart from the possibility of transmitting the necessary information via satellite, it is necessary to display the received information with the use of a projector of unattainable high quality.
PL 193 224 B1
Compression algorithms are being developed to reduce the bit rate requirements for delivering ultra-high quality electronic images.
There is a known method of dynamic image compression for significant compression while maintaining the quality of image signals, which uses adaptively dimensioned blocks and sub-blocks of data encoded discrete cosine DCT coefficients. This method is called the discrete cosine transform method with adaptive change of the ABSDCT block size. The adaptive block sizes are chosen to take advantage of the redundancy associated with the information contained within the picture data frame. This method is described in US Patent No. 5,021,891 as well as in US Patent No. 5,107,345. The use of the ABSDCT method in conjunction with the discrete quadrant tree transformation method is disclosed in US Patent No. 5,452,104. The systems described in these patents use intraframe coding with each frame of the picture sequence being coded without considering the content of any other frame.
When using the ABSDCT method, the required data rate is reduced to about 50 million bits per second without any noticeable deterioration in quality. This speed of compressed digital data is easily achieved using a single satellite transceiver, especially considering that a single transmission is received by many hundreds or thousands of receivers in cinema theaters all over a geographical area or country.
Distributing film information using electronic digital format increases the possibilities for rapid duplication without compromising quality. Along with the ease of duplication associated with digital technology, encryption methods have emerged to ensure that information is encoded in a way that prevents the distribution of useful information to unauthorized parties.
New techniques such as the ABSDCT method, improved projection equipment and electronic encryption methods make it possible to create a digital cinema system that relates to the electronic distribution and display of an ultra-high quality film program converted into a digital representation of it for storage, transmission and display purposes. The digital cinema system overcomes many of the limitations of known film distribution systems and does not exhibit the degradation in quality that celluloid film experiences over time. The digital system almost completely eliminates the theft and illegal copying associated with celluloid film, and also allows the use of security measures in the digital system itself. However, distribution channels and mechanisms are still determined by known methods of copying and distributing celluloid films.
The method of distributing information according to the invention is characterized in that compressed and encrypted digital video and audio information associated with at least one image program and at least one audio program for presentation at at least one predetermined time is independently received and remembered. auditorium, independently distributing the memorized image and sound information to one or more audiences, independently decrypting and decompressing the stored picture and sound information in each auditorium, receiving the decrypted and decompressed picture information on at least one associated projection system, and presenting one of the at least one image program, and receiving the decrypted and decompressed audio information and selectively recreating one of the at least one sound program is synchronized with the displayed image program.
Preferably, the compressed video and audio information is stored discontinuously, independently of each other.
Preferably, the video and audio information is compressed remotely.
Preferably, digital images are generated using a digital image generation system.
Preferably, the digital images are captured, encrypted, compressed and distributed from the digital image generation system to the pre-selected authorized presentation systems by the central device substantially simultaneously with digitizing the images.
Preferably, the compressed and encrypted video and audio information is stored in the central device for transmission at a later predetermined time.
Preferably, the audio information is compressed at a variable rate.
Preferably, the audio programs associated with the image information segregated in time relative to the respective image are compressed and forwarded using an identifier for associating one or more pre-selected audio programs with at least one pre-selected image program as required for presentation.
PL 193 224 B1
Preferably, each of the sound programs with multiple sound tracks is used, presented with the same picture program during different presentations.
Preferably, the image information is compressed at a variable rate.
Preferably, the cryptographic key information necessary for decryption is received at a time separate from the receipt of the compressed and encrypted information.
Preferably, one indicates a period of time during which the cryptographic key information is valid and to ensure that the key is only used during that period.
Preferably, writing is done by deleting the cryptographic key information in the memory location after this period of time has elapsed.
Preferably, at least one watermark is received which is unnoticeable when presenting image or sound information at a predetermined normal rate, but detectable when that image or sound information is presented at a rate substantially different from the normal speed.
Preferably, a watermark is configured to identify both the presentation time and the location of the image or sound information.
Preferably, the encrypted and compressed information is modulated and transmitted over the wireless communication link between the central device and the presentation systems.
Preferably, information is broadcast to any one or more of a plurality of audiences to allow multiple presentations of information in different audiences at the same time.
Preferably, a given rate of compressed information transfer is used which is not equal to the rate at which the information is compressed.
Preferably, a transfer rate is used which is equal to the rate at which the information is compressed.
Preferably, checksum information is appended to the transmitted information to detect blocks of transmitted information having transmission errors.
Preferably, at least one satellite is used to transmit information to the presentation systems, and at least one satellite receiving terminal is suitably located in the central device and the quality of the satellite channel used for transmitting the information is controlled, to adjust the transmission characteristics of the satellite channel to maintain the desired quality level.
Preferably, data is exchanged via a bi-directional transmission link between the central device and the presentation systems.
Preferably, the exchanged data is used for cryptographic security purposes.
Preferably, compressed information received with errors in the presentation system is requested to be retransmitted.
Preferably, the compressed information received with errors in the presentation system is retransmitted over the bidirectional link.
Preferably, various input monitoring and control signals as well as commands transmitted between the central device and the presentation systems are used as data.
Preferably, the network management system performs operational control of each network management system of display systems for displaying images for imaging at permitted times and places.
Preferably, each presentation system is configured as a theater theater, with at least one auditorium.
Preferably, the compressed information is distributed to pre-selected audiences from among the plurality of auditoriums in the theater complex at any given time.
Preferably, a physical intrusion into the projection system for the auditorium system is detected and the cryptographic key information cleared when the intrusion is detected.
Preferably, the encrypted and compressed information of a single image program is transmitted from the central memory system to different auditoriums in a complex of multiple theater auditoriums with pre-selected programmable time offsets from each other.
Preferably, the preselected programmable offsets are reduced substantially to zero such that a single program is presented to different auditoriums substantially simultaneously.
Preferably, compressed and encrypted image and sound information is stored which is used to create presentation events in one or more auditoriums in the theater's central memory system.
Preferably, a system of memory devices with a magnetic carrier is used as the central memory system of the theater.
PL 193 224 B1
Preferably, parity information is used to append different pre-selected pieces of compressed information to different of these devices during storage and to a single audience during retrieval.
Preferably, the strip-shaped received information is written in parallel in the entire array of storage devices for the desired data rate and redundancy to protect against errors.
Preferably, the imaging history of the authorized programs presented in each audience is memorized and the history is communicated to the central device.
Preferably, program sets are formed from one or more received individual image and sound programs for presentation to an auditorium system during an authorized period.
Preferably, automatic distribution, storage and display of programs is provided under programmable control by a central device.
Preferably, some of the pre-selected network operations are controlled from a location remote from the central facility.
Preferably, the stored information is distributed to one or more of the plurality of auditorium locations for presentation to the public via the theater local network system.
Preferably, the image information is provided in the form of image programs which are either a single still frame or a series of frames presented as films of different length.
Preferably, during transmission, compressed and encrypted digital information is stored in the central device, the stored information is retrieved on a portable storage medium for physical distribution to the presentation systems, and the stored information is retrieved on the medium and transferred to the presentation system memory.
Preferably, the medium is archived in the central device.
Preferably, the medium is archived in the presentation system.
The information distribution device according to the invention is characterized in that it comprises a circuit for independently receiving and storing compressed and encrypted digital image and sound information associated with at least one image program and at least one audio program for presentation at at least one predetermined time. a system for independent distribution of remembered image and sound information to one or more auditoriums, system of independent decryption of stored image and sound information in each auditorium, system of independent decompression of stored image and sound information in each auditorium, at least one projection system connected for receiving the decrypted and decompressed image information and the at least one image program present, and at least one sound system connected for receiving the decrypted and decompressed audio information and selectively playing the at least one audio program synchronously with the displayed image program.
Preferably, the apparatus comprises a digital image generation system for generating digital images.
Preferably, the device comprises a system for storing the encrypted and compressed image and sound information in a central memory system for transmission at a later predetermined time.
Preferably, the apparatus comprises a circuit for transmitting audio programs related to the image information, segregated in time to the respective image program, using the identifier for associating one or more pre-selected audio programs with at least one pre-selected image program in accordance with the desired presentation.
Preferably, the apparatus comprises a cryptographic key information receiving circuitry necessary to decrypt the information in a separate time from receiving the compressed and encrypted information.
Preferably, the device comprises a system for storing and transmitting the cryptographic key information necessary for decryption to authorized audiences at a time separate from the distribution of the compressed and encrypted information.
Preferably, the apparatus comprises a circuit for indicating a period of time during which the cryptographic key information is valid and for ensuring that the key is only used during that period.
Preferably, the apparatus comprises a circuit for writing to erase the cryptographic key information in the memory location after this period of time has elapsed.
Preferably, the apparatus comprises a reception circuit for at least one watermark which is imperceptible when presenting image and sound information at a predetermined normal rate, but is detectable when image or sound information is presented at a rate substantially different from the normal speed.
PL 193 224 B1
Preferably, the device comprises a modulation and transmission system for establishing a wireless communication link for transmitting information between the central device and the presentation systems.
Preferably, the messaging system comprises a compressed information broadcasting system to any one or more audiences for multiple presentations of information in different auditoriums at the same time.
Preferably, the transmitting system comprises at least one satellite, the apparatus additionally comprising at least one satellite receiving terminal in the central equipment for quality control of the satellite channel used for information transmission, for adjusting the transmission characteristics of the satellite channel to maintain the desired quality level.
Preferably, the device comprises a bi-directional transmission link between the central device and the presentation systems through which the data exchange takes place.
Preferably, the apparatus comprises a circuit for re-transmitting the compressed information received with errors on the bi-directional link by the presentation system.
Preferably, the apparatus comprises a management system, a network of presentation systems for presenting images imaged at permitted time periods and locations.
Preferably, the network management system implements the operational control of each presentation system.
Preferably, each presentation system comprises a theater with at least one audience.
Preferably, the device comprises at least one decoder / descrambler integrated with each image projection system in each auditorium to prevent branch eavesdropping and image duplication.
Preferably, the device comprises a circuit for detecting a physical intrusion into the projection system of the auditorium system and erasing cryptographic key information upon detecting such intrusion.
Preferably, the distribution system is configured to distribute compressed and scrambled image and sound information for a single image program from among different auditoriums with pre-selected programmable time offsets with respect to each other.
Preferably, the apparatus comprises a central theater memory system for storing compressed and encrypted image and sound information used to create presentations in one or more auditoriums.
Preferably, the theater central memory system includes a databank shared by multiple auditoriums.
Preferably, the databank comprises an array of magnetic media storage devices and a parity information application circuit for combining various pre-selected portions of compressed and encrypted information for different devices during recording and for a single audience (128) in retrieval.
Preferably, the theater central memory system includes a parallel strip record of the received information across the array of memory devices to provide the desired data rate and error protection redundancy.
Preferably, the apparatus comprises a system for storing a history of imaging the authorized programs presented in an audience and informing about the history of the central device.
Preferably, the apparatus comprises a theater management system for the operational control and control of auditoriums in the theater complex.
Preferably, the theater management system further comprises program control means for creating data representing program sets from data representing one or more received individual image programs that are on a presentation schedule to the auditorium system during the authorization period.
Preferably, the apparatus comprises a system for automatically distributing, storing and presenting programs under programmable control of the central apparatus.
Preferably, the apparatus includes a system for automatically distributing, storing and displaying programs under programmable control by a control device remote from the central device.
Preferably, the apparatus includes a system to control certain pre-selected network operations from a location remote from the central facility.
Preferably, the apparatus comprises a theater local network system for distributing the stored information to one or more of a plurality of auditoriums.
Preferably, the transfer system includes a compressed and scrambled information storage circuit at the central device and a storage information retrieval circuitry on a portable storage medium for physical distribution to presentation systems.
PL 193 224 B1
Preferably, the device comprises a medium archiving system in the central device.
Preferably, the apparatus comprises a medium archiving system in the presentation system.
The method of data transmission according to the invention is characterized in that image data is received, the received image data is compressed, the compressed image data is encrypted such that the encrypted image data accompanies the data identifying the selected locations, and the data is decrypted using an encryption key, and the encrypted data is transmitted. an image over a transmission medium, the encryption key being transmitted independently of the encrypted data.
Preferably, the encryption key is derived for transmission at a different time than the encrypted image data.
Preferably, the reproduction of the image program at the selected location is authorized for a predetermined period, and the encryption key is derived for transmission shortly before the start of the predetermined period.
Preferably, the reproduction is preferably limited to a predetermined period only by the encryption key.
Preferably, the encrypted image data is distributed over a broadcast medium.
Preferably, the encryption key is transmitted over a medium different from the broadcast medium.
Preferably, a watermark is added to the encrypted image data.
Preferably, a watermark containing data representing a place-specific and / or time-specific identifier at pseudorandom locations in the encrypted image data is used.
Preferably, the watermark is configured to indicate the authorized place and time for presentation of the image program represented by the encrypted image data.
Preferably, the encrypted image data is transmitted over the broadcast broadcast medium.
Preferably, the encrypted image data is transmitted at a rate that depends on the characteristics of the image represented by them and the characteristics of the transmission medium.
The data transmission apparatus according to the invention is characterized in that it comprises an input device for receiving image data, a data compressor for compressing the received image data, a data encoder for encrypting the compressed image data, such that the encrypted image data is accompanied by data identifying the selected sites and an encryption key to enable data decryption and a transmitter for transmitting the encrypted image data and the encrypted key via the transmission medium, wherein the data encoder is adapted to derive an encryption key for transmitting independently encrypted image data.
Preferably, the data encoder is adapted to add a watermark to the encrypted data.
Preferably, the transmitter is adapted to broadcast the scrambled image data via a broadcast transmission medium.
Preferably, the transmitter is adapted to transmit the encrypted image data at a rate depending on the characteristics of the image program it represents and on the characteristics of the transmission medium.
The method of displaying image programs is characterized by receiving encrypted image data transmitted over a transmission medium representing image programs for imaging and for receiving an encryption key independently, decrypting the encrypted image data using the received encryption key, and distributing the decrypted data to selected devices. to display an image during a presentation.
Preferably, the encryption key is received at a different time than the encrypted image data.
Preferably, the encryption key is adapted to limit reproduction only to a predetermined period of time, and decryption is only performed during that predetermined period.
Preferably, the encrypted picture data is received selectively from the broadcast medium.
Preferably, the encryption key is received from a medium different from the broadcast medium.
Preferably, the quality parameters of the received data are measured and requests are made to retransmit a portion of the encrypted image data in case the quality parameters fall below predetermined values.
Preferably, the digital signatures are compared to portions of the encrypted image data and to request retransmission of those portions if the digital signatures are incorrect.
Preferably, parts of the encrypted image data with incorrect digital signatures are replaced with parts with correct digital signatures after they are retransmitted.
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Preferably, the decrypted image data is stored for subsequent distribution to selected display devices.
Preferably, the decoded image data is distributed to a plurality of display devices to display the image programs therein simultaneously.
Preferably, the decrypted image data is distributed to a plurality of display devices for displaying with a relative time delay of the image programs.
Preferably, the encrypted image data is stored before a predetermined period, and the encrypted image data is decrypted to display the images represented therewith during the predetermined period.
The history of the presentation events is preferably recorded.
The image program display apparatus according to the invention is characterized in that it comprises a receiver for receiving encrypted image data transmitted by a transmission medium and representing an image program for imaging and for independently receiving an encryption key, a data decryptor for decrypting encrypted image data using the received encryption key, a plurality of image display devices; and a broadcast network for distributing the decrypted image data to the selected image display devices during a presentation.
Preferably, the encryption key is adapted to limit the reproduction only to a predetermined period of time, and the data decryptor is adapted to respond to the encryption key to decrypt the encrypted image data only during that predetermined period.
Preferably, the device comprises a management processor for measuring the quality parameters of the received data and issuing a re-transmission request for a portion of the encrypted image data.
Preferably, the management processor is adapted to compare the digital signatures on portions of the encrypted image data and to request retransmission of the portions if the digital signatures are incorrect.
Preferably, the management processor is adapted to replace parts of the encrypted image data with incorrect digital signatures by parts with valid digital signatures after they are retransmitted.
Preferably, the device comprises a memory chip for storing decrypted image data for subsequent distribution to selected display devices.
Preferably, the memory system is adapted to store the encrypted image data before a predetermined period, and the decrypted image is adapted to decrypt the encrypted image data from the memory system to display the image programs represented therein during the predetermined period.
Preferably, the apparatus comprises a recorder for recording the history of the presentation events.
An advantage of the invention is that it enables the restriction of copying, faster distribution and updating of distributed products, while at the same time providing scheduling and distribution flexibility. The invention gives increased centralized control over dissemination and distribution and makes it possible to deliver films and other audiovisual presentations with alternative soundtracks targeting the expanding markets of multilingual audiences or with alternative languages. The invention provides for the integration of certain techniques in a method and system for the delivery and control of high-quality image and audio program material for viewing on a large screen, and provides a method and system for the reliable transmission of image and audio signals to designated cinemas, flexible timing of full-length feature films and advertising, integration of high-quality audio signals and built-in security measures.
The subject of the invention is shown in the exemplary embodiments in the drawing, in which Fig. I shows in the form of a block diagram a known film copying and distribution system, Fig. 2 - in the form of a general block diagram of an embodiment of a digital cinema system according to the invention, Fig. 3 - in the form of a block diagram - a system for generating a film source material, Compression / Encryption Block Diagram, Fig. 5 - in the form of a block diagram modulation / transmission system, fig. 6 - in the form of a block diagram network management system, fig. 7 in the form of a block diagram arranged theater system, fig. 8 - in the form of a block diagram the internal network of a concentrator and redundancy of the main concentrator, fig. 9 is a block diagram of a theater receiver / demodulator, FIG. 10 is a block diagram of a theater management system, and FIG. 11 - in the form of a block diagram cinema theater decoder system.
PL 193 224 B1
The invention relates to a digital cinema for the electronic distribution of high-quality audiovisual programs, e.g. films, from one or more central distribution points, referred to as head hubs, head units or head stations, to a plurality of receiving stations, referred to as theater systems, theater theaters, cinema complexes or presentation systems. The digital cinema system is new to video and audio compression, projection technology, encryption methods and many other areas. A complete system is proposed which includes an apparatus for encoding, encrypting, transmitting, storing, decompressing and reproducing audiovisual material, and a device for controlling various functions of the system.
Digital cinema is intended to replace the current method of physical distribution of a film to any place of reproduction or projection, such as movie theaters or distant auditoriums. Eliminates the need to copy the film and ship the film by courier to theaters. It offers potentially exceptional audiovisual quality as well as built-in security measures. When transmitting audio and video signals via satellite or other high-speed electronic medium, digital cinema additionally offers the possibility of broadcasting live programs, such as sports events and concerts, in cinema-quality in real time. Alternatively, programs can be broadcast to movie theaters and stored on storage devices such as magnetic disks for later display.
An exemplary digital cinema system according to the present invention is shown in Fig. 2. The digital cinema system shown in Fig. 2 includes two main systems: at least one central device or hub 102 and at least one presentation system or cinema theater 104 (104A - 104N). In a preferred embodiment, the signal carrying information or image data and sound data is broadcast, i.e. broadcast from the central device or hub 102 to the display system or theater 104 using at least one satellite 106. The main concentrator 102 serves all the theater systems 104 (104A - 104N) that are included in the antenna beam pattern of the satellite 106 connected to a selected wireless, wired or other high speed telecommunications link. Generally speaking, a series of cinemas or presentation venues, for example open-air amphitheaters, schools, specialist restaurants, and so on, form a network of venues capable of receiving image or sound information using this system.
Although a single information processing central device, i.e., a hub 102 is shown, a backup hub device may be needed to increase network and distribution reliability. In addition, it is possible to use additional concentrators 102 with the same or different satellites 106 or different types of links to serve cinema theaters 104 or other presentation locations within the same geographic area (or antenna beam trail). There may be times when different hubs are used by different movie providers or other service providers competing in a given geographic area served to transmit different levels of programming material, to operate slightly different types of equipment, and so on. According to the present invention, multiple satellites and concentrators are envisaged to be used in accordance with the need to provide different levels of professional service.
Typically, each theater in a network of presentation venues uses a presentation system to receive image or audio information and includes some centralized equipment as well as some equipment used in each presentation auditorium. Satellite 106 may be a Ku-band geosynchronous satellite, although other frequencies and orbits of the satellite may be used. Many satellite systems and satellite repeaters are known to support this transfer function due to the desired location, cost, average throughput, etc.
At the primary hub 102, the source generating system 108 supplies the digitally processed electronic, audio, and image programs to the system. Typically, the source generation system 108 receives the footage and generates a magnetic tape containing digitally processed information, i.e., data. The film is digitally scanned at very high resolution, yielding a digitally processed version of the film or other program. Typically, the known telekinetic process generates picture information, while the known digital conversion processing generates the audio part of the program. The processed images need not be part of the movie, but can be a single image or still-frame images, or a series of frames, ie images, including series shown as variable-length movies. These images can be presented as series or sets to form so-called image programs. In addition, it is possible to use other materials, for example, such as vision support paths for the visually impaired audience, foreign subtitles10
Language and / or subtitling for a hearing impaired audience, or multimedia timing track. Likewise, sounds or recordings can be used to compile the desired audio programs.
Alternatively, the digitally processed image information may be generated by a high resolution digital camera or other known high resolution device or digital image generation procedure. This use of a digital camera which directly produces digitally processed image information is particularly useful for capturing live events for immediate or simultaneous broadcasting. Computer workstations or the like may be used to directly generate graphic images for distribution.
Digital image or program information is presented in a compression / scrambling system 110 that compresses the digital signal using a preselection known format or process, reducing the amount of digital information necessary to reproduce the original image with very high quality. In a preferred embodiment, the ABSDCT method is used to compress the information source material. The ABSDCT compression method is described in the above-mentioned US Patent Nos. 5,021,891 and 5,452,104. The audio information is also digitally compressed using a standard method, and may be time synchronized with the compressed image information. The compressed image and audio information is then encrypted and / or scrambled encoded using one or more electronic security methods.
The network management system 112 monitors the status of the compression / encryption system 110, and uses the system 110 to multiplex theater, security, and transmission control information with the compressed / encrypted data accordingly. The multiplexed signal is then fed to a modulation / transmission system 114 which, under the direction of the network management system 112, modulates and transmits via satellite 106 a signal carrying compressed information to theater systems such as theater system 104A. That is, the compressed information can be sent by wireless communication, i.e. via a radio link, to cinemas or presentation venues.
In some embodiments, the compressed image and audio information is carried discontinuously or separately, independently of each other. That is, means are used to compress and transmit audio programs associated with image information but with time separation. When using the present invention, there is no requirement for simultaneous audio and image processing and transmission. A predetermined predetermined identifier specifying a mechanism or procedure is used to associate the respective audio and image programs with each other, if necessary. This enables one or more pre-selected audio programs to be combined with at least one pre-selected image program needed during a presentation, i.e., a presentation event. That is, although not pre-synchronized with compressed image information, the compressed audio is combined and synchronized during presentation. As discussed below, the compressed image and audio information may be stored, together or separately, in the central device for later delivery at a designated time.
Although Fig. 2 shows a situation where the broadcast signal is transmitted using satellite 106, it is obvious that the broadcast signal may be transmitted using also a number of terrestrial transmission methods, such as the well-known terrestrial cellular, microwave or other type of radio equipment. relay devices. Alternatively, wired transmission methods such as known multi-drop Internet access nodes, dedicated telephone lines, or point-to-point fiber optic networks can be used to implement the invention.
The primary concentrator 102 may also include at least one distributed theater system 116 for monitoring the quality of the signals received from the satellite 106 transmitted by the modulation / transmission system 114 and providing a reception quality measurement in the network management system 112. The distributed theater system 116 does not require the use of all the features or processing capabilities of similar devices located in the respective theater theaters, but it would be possible to use a simpler satellite signal receiver with the appropriate reception, demodulation, decompression and decompression components to generate a signal useful for analysis. other. For example, the deployed theater system 116 obviously need in most cases not to allow for sufficient signal quality analysis based on known characteristics of the transmitted digital data to provide a high quality complete image for projection.
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When a poor broadcast signal quality is determined, the network management system 112 may adjust the compression / scrambling system 110 and modulation / transmission system 114 to improve transmission quality. For example, changes in detected error rates in the case of digital data, or loss of data frames in received signals, can be used to change the compression ratio, change transmission parameters, e.g. signal strength, automatically retransmit part of a signal, or completely abort transmission with some problems. with satellite broadcast.
While the present invention is particularly suited for use in displaying image and audio information at various presentation venues, such as open amphitheaters, parking service complexes, city auditoriums, schools, specialty restaurants, and the like, for the sake of simplicity in the following description, an example is considered to be a cinema theater or cinema complex. It is obvious to the skilled person how the invention can be applied to other types of locations.
The broadcast signal is received in the system 104 (104A - 104N) by the receiver / demodulator 120. In an embodiment where a satellite transceiver is used to transmit the signal. The receiver / demodulator 120 demodulates the received signal and monitors the demodulated signal for errors. To assist in this process, an additional checksum may be introduced into the compressed information prior to transmission to enable error detection in transmitted information blocks.
If the error rate exceeds a predetermined level, theater management system 122 may request re-transmission of the signal portions containing errors. This retransmission request may be transmitted from the theater management system 122 to the root hub 102 using a reverse link 113, which may use a switched or dedicated link, satellite channel, packet data link, Internet, radio link, or other low speed communication method. transmission.
In some embodiments, the retransmission of a portion of the data frames to be forwarded to the presentation site or theater may also take place via the uplink 113. That is, reverse link 113 is configured as bi-directional data links that handle, for example, retransmission requests or other information from the theater to the hub, or commands, general operating information, or compressed image or audio information from the home hub to the theater. This bi-directional link may also be used to transmit cryptographic key data as discussed further below.
System 104 (104A-104N) is coupled with at least one, and typically multiple, auditors 128A-128M. For example, in some commercial markets, movie theaters are stacked as cinema complexes with multiple auditoriums in a single location, often called cinema theaters or multiplexes. The received signal may be broadcast or relayed to one of a plurality of auditors within a single theater complex.
The demodulated signal is transmitted from the receiver / demodulator 120 to the central storage system 123 using memory areas 124A-124N via Theater Interface Network (TIN) network 126 for storage. Memory areas 124A-124N may be sized to support cinema theater complexes with different numbers of screening rooms. The demodulated signal may instead be forwarded to one of auditoriums 128A-128M via the theater interface network when presentation is desired when receiving information from the primary concentrator 102 (i.e., live presentations).
When there is a need to watch a program, the program information is read from memory areas 124A-124N and transmitted to one or more designated auditoriums 128A-128M using the TIN network 126 of the theater interface. If the designated audience is audience 128A, decoder 130A decrypts the signal, broadcasts it using secret key information provided only to authorized movie theaters, and decompresses the signal using a decompression algorithm that is inverse to the compression algorithm used in the source generating system 108 (SGS). . Decoder 130A converts the image information after decompression to the standard video format used by the projection system (which may be either analog or digital format) and the image is displayed by electronic projector 132A. The audio information is also decompressed and fed to the auditorium's sound system 134A for playback with the image program. After time12
After the period of authorization to present a certain program, information of the digitally processed program is erased from one of the memory areas or parts thereof to prevent unauthorized use of the material. While not specifically stated, auditoriums 128B-128M may each include a decoder, projector, and sound system.
When multiple viewing locations are planned, the central storage system 123 is configured to transmit the compressed information of a single image program to different audiences with preselected offsets or time delays with each other. These preselected programmed offsets are selected according to the invention to be substantially zero or very small when a single image program in selected multiple auditoriums is to be displayed substantially simultaneously. In other cases, these offsets can be set anywhere from a few minutes to several hours, depending on the configuration and memory capacity, to allow very flexible presentation scheduling. This enables a better fulfillment of market demands for the presentation of events, such as for example film premieres.
The real-time presentation of the live event program is similar to that of movies, but skipping write and read operations in memory areas 124A-124N, or use such areas as a short-term buffer to accommodate potential transient signal interruptions or timing jolts.
Alternatively, one or more digital tape recorders 136 may be used in the theater system 104. The tape recorder 136 may be used when a satellite link or other broadcast technique is not available, or when such a technique is not the recommended method of transmission, for reasons of cost or availability, for example. . In this case, magnetic tape or other portable media is used to distribute the program from the central distribution point to the theater 104. The tape recorder 136 transfers the program to memory areas 124A-124N using the TIN network 126 of the theater interface. Then the program information is available for display at a later time. Image and audio programs may also be recorded from disk storage areas 124A-124N to a tape recorder 136 for long-term archival storage for later reloading into memory areas 124A-124N.
Other high-density, high-bandwidth, memory devices may be used to replace the digital tape recorder 136. For example, other known information storage systems employing optical disk technologies, such as CD ROM storage devices or digital universal disks ( DVD - digital versatile disk) or even some semiconductor integrated memory circuits.
Figures 3-9 illustrate the following exemplary embodiments of the primary concentrator 102 processing blocks. Figure 3 illustrates the source generation system 108. In the exemplary embodiment, the source generation system 108 digitally processes cinematographic image material, e.g., 35mm film, and saves the digitally processed version on magnetic tape. The source generation system 108 with a high definition (HD) telekinetic device comprises a process 140 for loading source material and for generating 142 digitally processed images from the film. Telekine processing is well known in the movie industry, and any of several commercially available services or devices may be used to implement the invention. However, in a preferred embodiment, the high definition telekinetic processing is utilized with equipment such as currently available art-known equipment manufactured by CINTEL or Philips BTS. This solution and the specific sizing of equipment used is determined in accordance with the cost factors and other known factors when designing the service. Alternatives may also be used depending on the target audience, projection equipment available and location, including the desired reduction in data rate for some satellite transfers.
If the original movie is a 35mm standard format movie, the process is performed on the image using a telekinetic process at 24 frames per second. The digitally processed output of the telekinetic process can be recorded using a magnetic tape high speed recorder, or it is directly compressed and / or encrypted and then recorded using a lower speed tape recorder or other known image recording system and medium.
Since telekino only processes the image, the audio part of the source material is processed independently of the image. If the source audio material is in analog format, then
Typically, it is delivered on a magnetic tape 144 to a phono reader 146 for digitization. In one embodiment, up to twelve channels of digitally processed audio are combined with the digitally processed image by a mux 148 and the multiplexed signal is stored with the imaging program on a high definition video tape recorder (VTR) 150 or similar high capacity digital storage system. In contrast, as mentioned above, the audio program may be stored and processed separately from the image program, but with timing information enabled to allow a correct timing connection to the image program in the reproduction system in the projection auditorium.
The source generator system 108, while depicted as part of the primary hub 102, may of course be located in a device other than the primary hub 102. Other devices may also be suitable for generating a digitally processed signal from a magnetic or optical source material. Alternatively, the source generation system 108 may be a digital camera with an embedded magnetic or optical memory device or other digital image generation means (such as computer graphics or special effects) that directly produce digital source material. The source generation system 108 may also be an image converter used for 35mm photo slides or photo films. Thus, in conventional or specialized studios, e.g., for special effects, or other devices used in the preparation and presentation of an image program, the required digitally processed material may be generated and then forwarded to the central device or hub 102 for further processing or transmission.
Fig. 4 is a block diagram of a compression / encryption system 110. Similar to the source generator system 108, the compression / encryption system 110 may be part of the root hub 102 or may be located in a separate device. For example, the compression / encryption system 110 may be located with the source generation system 108 in a film or television production studio. In addition, the compression process for both image and audio information or data may be implemented as a variable speed process.
The compression / scrambling system 110 receives a digital signal, which may be provided by the digital video recorder VTR 150 of the source generation system 108. The digital image or audio information may be stored in frame buffers (not shown) prior to further processing.
The digital image signal passes to the image compressor 162. In the preferred embodiment, the image compressor 162 processes the digital image signal using the ABSDCT method described in the above-mentioned US Patent Nos. 5,021,891, 5,107,345 and 5,452,104.
In the ABSDCT method, the color input signal is usually in the YIQ format, with Y representing luminance or brightness, and the I and Q components being the chrominance or color components. Other formats such as YUV or RGB can be used. Due to the low spectral sensitivity of the eye to color, in the ABSDCT method, the color components (I and Q) are sampled with a coefficient of two in each direction, horizontal and vertical. Accordingly, four luminance components and two chrominance components are used to represent each spatial segment of the image input data.
Each of the luminance and chrominance components is passed to the block interleaver. Typically a 16x16 block is fed to a block interleaver which arranges the image samples into 16x16 blocks and produces blocks and complex subblocks of data for analysis using a discrete cosine transform (DCT). The DCT operator is one way to convert a time-sampled signal into a frequency representation of the same signal. When converted to a frequency representation, it turns out that DCT methods allow a very high degree of compression, since it is possible to develop quantizing devices using the characteristics of the frequency distribution of the image. In a preferred embodiment, the first ordering uses one DCT 16x16 transform, the second ordering uses four DCT 8x8 transforms, the third ordering uses 16 DCT 4x4 transforms, and the fourth ordering uses 64 DCT 2x2 transforms.
The DCT operation reduces the spatial redundancy contained in the source image material. After DCT is performed, most of the image signal energy tends to concentrate several DC coefficients.
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For a 16x16 block and each subblock, the transformed coefficients are analyzed to determine the number of bits needed to code a block or subblock. The block or combination of sub-blocks requiring the least number of bits to be encoded is then selected. For example, two 8x8 sub-blocks, six 4x4 sub-blocks, and eight 2x2 sub-blocks can be selected to represent an image segment.
The selected block or combination of sub-blocks is then placed in the proper order. The DCT coefficient values may then undergo further processing such as, but not limited to, frequency weighting, quantization, and coding (e.g., variable length encoding) using known methods in preparation for transmission. The compressed image signal is provided to at least one image scrambler 166.
The digital audio signal is typically passed to an audio compressor 164. In a preferred embodiment, the audio compressor 164 processes multi-channel audio information using a standard audio compression algorithm. The compressed audio signal is fed to at least one audio scrambler 168. Alternatively, the audio information may be transferred and used in an uncompressed but still digital format.
The image encoder 166 and the audio encoder 168 encrypt the compressed image and audio signals, respectively, using the same method or different methods. In a preferred embodiment, an encryption method is used that includes real-time scrambling encoding of the digital sequence of both image and audio programs.
In image and audio scramblers 166, 168, program material is processed by a hash encoder / scrambler circuit using time-varying electronic key information (typically changed several times per second). The scramble-encoded program material information can then be transmitted, for example, via radio over a wireless link, without being decrypted by someone who does not have the electronic key information used to encode the program material or digital data.
Encryption usually involves mixing a digital sequence or directly encrypting a compressed signal. The words encryption and coding are used interchangeably and are understood to mean any means of processing digital data streams from different sources using any of a number of methods to encode, protect or directly encrypt these digital streams using sequences generated using secret digital values (keys), in this way, that it is very difficult to reconstruct the original data sequence without knowing these secret key values.
Each image and audio program uses special electronic keying information, which is delivered, after encryption with electronic keying information specific to a show or theater, only to theaters or presentation venues authorized to show that particular program. The encrypted program key for the audience is needed to decrypt the program data stream. The encrypted program key is transmitted, or otherwise delivered, to authorized movie theaters prior to program playback. It should be noted that the program data stream may be transmitted days or weeks prior to the start of the permitted display period, and that the encrypted program key may be transmitted shortly before the start of the permitted reproduction period. The encrypted program key may also be communicated using a low-speed link or a transportable memory element, such as a magnetic or optical medium disk, a smart card, or other devices containing erasable memory elements. The encrypted program key may be provided such as to control the period of time during which a particular cinema complex or audience is authorized to show the program.
Each audience that receives an encrypted program key decrypts this value using an audience-specific key and stores the decrypted program in a storage device or other secure memory.
When the program is to be played back, the site-specific key information and the program specific key information is used, preferably, along with a symmetric algorithm that was used in the scrambling system 110 to assemble the scrambled signal, to decode / decrypt the program information in real time.
In addition to scrambling encoding, the image scrambler 166 can introduce a watermark, which is typically digital, into software image material. It consists in introducing an identifier, characteristic for a place and / or characteristic, into the program sequence
PL 193 224 B1 for time. That is, the watermark is arranged to indicate the place and time authorized for presentation in order to more effectively possibly trace the source of the illegal copying. The watermark may be programmed to appear at frequent but pseudo-random intervals in the playback process and not be visible to the viewing audience. The watermark is unnoticeable in reception during the presentation of image or audio information at normal bit rate after decompression.
However, the watermark is detectable when presenting image or audio information at a speed clearly different from the normal speed, for example a slower non-real time speed or when recreating still images. If an unauthorized copy of the program is detected, the digital watermark information can be read by surveillance and it is possible to identify the theater from which the copy comes. Such a watermarked method can also be used to identify audio programs.
Compressed signals, both image and audio, are forwarded to multiplexer 170. At multiplexer 170, image and audio signals are multiplexed with timing information to render the image and audio streams timely reproduced in theater system 104. The multiplexed signal is then processed by packet packer 172, which packets the data to form a program stream. In data packeting or data block formation, the program stream received at theater system 104 (FIG. 2) may be monitored for errors in received blocks, and only those data blocks with errors may be retransmitted, and not retransmitted. the entire program. This ensures increased reliability and efficiency of the transmission.
In another embodiment according to the present invention, the picture and audio parts are treated as separate and different programs. Thus, instead of using mux 170 to multiplex the picture and audio signals, the picture signals are packaged separately for transport. In this embodiment, the image signal may be transported excluding the audio signal, and vice versa. Picture and audio programs are compiled into programs only during playback. This makes it possible to combine different audio programs with image programs for various reasons, for example in different language versions, allowing post-implementation updates or program changes to conform to local community standards, etc. This ability to flexibly assign different multi-track audio programs to imaging programs is very useful in minimizing the cost of making changes to programs already in distribution and adapting to the larger multicultural markets currently available to the film industry.
Compressors 162, 164, scramblers 166, 168, multiplexer 170, and program package block 172 may be implemented in a software-controlled processor programmed to perform the functions described herein. That is, they can be configured as generalized hardware functional equipment including various programmable electronic devices or computers that run under the control of software or firmware. They may, alternatively, be implemented by some other technique, for example ASICs or via one or more circuit board arrays, that is, constructed as specialized hardware.
The video and audio program stream is sent to memory area 174. The program stream may additionally be sent to a digital line tape recorder 176.
The CES 178 controller is primarily responsible for controlling and monitoring the entire compression / encryption system 116. The CES 178 controller may be implemented by programming a general-purpose hardware device or computer to perform the desired functions, or by using specialized hardware. The network control of the CES 178 is provided from the network management system 112 (Fig. 2) through the internal network of the concentrator, which is described further in this document. The CES controller 178 communicates with compressors 162, 164, scramblers 166, 168, multiplexer 170 and packet packer 172 using a known digital interface and controls the operation of these components. The CES 178 also controls and monitors area 174, digital tape recorder 176, data transfer between these devices, and modulating transmission system 114 (FIG. 2).
Memory area 174 compiled into a hard disk bank, which may be generally similar in structure to disk storage area 124 used in theater systems 104 (FIG. 2). However, it is obvious to a skilled person that in some applications it is possible
Other media, such as rewritable optical disks, may be used. The capacity of the primary concentrator disk storage area may be less than the capacity of all combined theater systems 104 (all auditoriums or locations combined) because one program is required in the storage memory area 174 at a time. Typically a new program is stored and removed from memory after transmission.
However, it is possible to store multiple programs simultaneously, and even transfer them simultaneously over a given link, depending on the equipment used to receive the transferred material. Disk storage 174 receives compressed and encrypted image, audio, and control data from either a packager 172 or a digital line-tape recorder 176 during the compression phase. During the transmission phase, the disk storage area 174 transmits the recorded data to the modulating transmission system 114. The operation of the disk storage area 174 is managed by the CES controller 178.
Control mux 180 receives the program material stream from disk storage area 174 and control information from controller CES 178. Control mux 180 multiplexes these two data streams, and forwards the multiplexed data stream to transport packager 182. Transport packager 182 packets the data stream to form the transport stream. data, and sends this packetized stream to a modulating transmission system 114.
The 176 digital tape recorder (DTR) is used to archive compressed video and audio, and to distribute recorded programs to cinemas that do not have a satellite link or other necessary radio or cable link, that is, for generating tapes. distribution with digital information. The tape recorder 176 receives the compressed and encrypted image, audio, and control data from the program packeter 172 during the compression phase. The program may be dearched while the tape recorder 176 transfers the recorded data to the disk storage area 174. The operation of the digital linear tape recorder 176 is managed by the CES 178 controller.
Fig. 5 shows a modulation / transmission system 114. The modulation / transmission system 114 modulates and transmits the transport data stream from the compression / scrambling system 110. Modulation / transmission system 114 includes at least one modulator 200 and a IF boost converter. 202, which are typically located on the same music device as the compression / encryption system 110, the network management system 112, and the deployed theater system 116 (FIG. 2). The modulation / transmission system 114 includes an RF converter. 204, a high power amplifier 206, and a modulation / transmit system controller 208 that are located inside or adjacent to the ground station 210.
Modulator 200 is a standard subsystem that implements forward error correction information and modulates the transport data stream for transmission over a satellite (or other wireless transmission route) using methods known in the art. In a preferred embodiment, known convolutional and joint Reed-Solomon coding methods are used to perform the forward error correction function. Standard PSK (phase shift keying) modulator can be used as modulation function.
RF boost converter 202 converts the output waveform from modulator 200 to some intermediate frequency, e.g., 140 MHz. This signal is then fed to the RF boost converter. 204. The implementation of this subsystem can be accomplished by using the existing hardware with only minor modifications to be compatible with the rest of the system in a known manner.
RF converter 204 will usually be the standard subsystem that converts the IF signal. to a broadcast signal suitable for satellite transmission. In a preferred embodiment, the IF signal with a frequency of 140 MHz is converted into a Ku-band signal. The Ku band output is tuned from approximately 14.0 GHZ to 14.5 GHZ. Two boost converters and an automatic crossover (not shown) can be used to provide hardware redundancy and improve system reliability. The output signal is fed to a high power amplifier 206 for amplification. In contrast, it is possible to use for transmission via satellite or possibly other frequency bands than the Ku band.
The high power amplifier 206 amplifies the Ku-band frequencies (or other necessary frequencies) of the transmitted signal for transmission to the satellite repeater. To provide hardware redundancy and improve system reliability, two high power boost amplifiers and an automatic crossover (not shown) can be used.
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MTS (modulation / transmission system) controller 208 may be used to couple, configure, and monitor hardware at ground station 210. The controller 208 may be implemented using known programmable hardware, such as a personal computer or workstation.
The ground station 210 consists of HF connections. and antennas. The station usually includes a block, i.e. a HF structure that houses the RF boost converter. 204, HPA 206, MTS driver 208 and, if necessary, power and air conditioning equipment (not shown). Typically, program and control information is broadcast from the ground station 210 to the theater systems over one or more broadcast channels. The broadcast signal includes control information for notifying the theater systems of the identity of each broadcast program. In addition, control information is transmitted to the theater systems such that the theater selectively stores only those received programs that are intended for a particular theater system and for other control functions related to system operation. As mentioned, this information can usually be transferred, as needed, over a high or low data rate link.
Fig. 6 shows a network management system 112. The network management system 112 controls and manages the digital cinema system 100. This includes controlling and monitoring the components of the main concentrator 102 and the network of theater systems 104. Control may be centralized such that the network management system 112 manages all system operation, including control, broadcast or transfer, reproduction / display, protection, and general network management functions. Alternatively, a distributed management system may be implemented in which processors in the presentation systems or theater theaters control some of the functions of the theater.
The network management system 112 includes at least one network management processor 220 which is the central controller or brain of the digital cinema system 100. The network management system 112 is generally based on a standard platform workstation or similar programmable processing hardware. A network management processor 220 manages the scheduling and security aspects of the digital cinema system 100.
Under the control of the network management system 112, programs may be broadcast from the central device or hub 102 ahead of time to display the program material at theater 104. This procedure will typically be used if real-time transmission is not required from the event. Thus, a separate process controls the playback of previously recorded program material at a later time than transmitting from the root hub 102.
The network management processor 220 also controls the broadcast, transmit, or forward rate. The baud rate may be fixed or variable depending on the type of program and the structure of the channel or transfer path. This may depend, for example, on the transfer rate for a particular satellite transponder or other data link. Parallel transfers of program material could also occur at higher bit rates. For programs that are saved and played back later, the data rate may be greater than or equal to the real-time speed for that program. Also, the compression coding bitrate of software material may vary from program to program, providing different levels of compression quality. The broadcast of the program from the live event is supported by data transmission with the same relative speed as the compression ratio.
A redundant network management processor can be used as a backup. The network management processor 220 mediates contact with other system components via an internal hub network which is typically implemented using a standard multi-point network structure such as Ethernet. However, it is possible to use other known network structures and types, including optical links. In this example, the internal network of the hub serves the Ethernet hub 224 of the network management system 112 as discussed later in connection with FIG. 8.
The network management system 112 may also include a modem bank 226 that interface to the theater network via PSTN and typically consists of a set of switched telephone network modems, cable or satellite modems, ISDN drivers or cellular drivers, or other known means. The modem bank 226 provides an interface to the network management processor 220 via a modem server function. The modem bank 226 serves as the receiver of the reverse path of the telecommunications link from the theater to the hub 102. The reverse path may be used by the theater to request retransmission.
From root hub 102 of program data blocks that contained errors. Retransmission requests and retransmission itself may take place during or after transmission of the program material. In other embodiments, the reverse path may be provided via a satellite channel or other low speed communication method, or via the Internet. In this case, other known interface means or devices are implemented instead of the modem bank 226, if desired.
The theater system 116 deployed in FIG. 7 monitors the quality of the transmitted signal and communicates the measurement results to the network management system 112.
The dispersed theater system 116 includes at least one theater system receiver 232, which typically has the same design as the theater system receiver 104. Receiver 232 provides an interface to at least one receiving antenna 234 for receiving a signal transmitted from modulating transmission system 114 via satellite 106. In contrast, when using other types of links, a cable or fiber interface is used to check the quality of such links. The distributed theater system 116 also includes at least one management processor 236 that receives a signal from the receiver 232 of the theater system and measures the quality parameters of the transmitted signal. The management processor 236 also provides the quality report to the network management system 112. In a preferred embodiment, the management processor 236 interfaces with the network management system 112 via Ethernet or a high-speed bus.
Figure 8 is a block diagram of an internal network 250 of a concentrator. The hub internal network 250 is the communication backbone of the hub 102. The hub internal network 250 may be extended internally as a Local Area Network (LAN) operating in accordance with the IP protocol. Thus, the hub interior network 250 physically interconnects the compression / encryption system 110 (110A-110B), modulation / transmission system 114 (114A-114B), network management processor 220, and deployed theater system 116 (116A -116B) at the primary hub. According to the specific functional division into local and remote functions, it is also possible to use an external interface to connect the main hub 102 to an external computer network or computer system if necessary.
In a preferred embodiment, the primary concentrator 102 provides redundant or redundant components to meet the reachability requirements in the event of a primary component failure. Each system within primary hub 102 has a primary system and either a parallel redundancy system or built-in redundancy with auto-handover capability as further illustrated in Figure 8. Thus, the hub interior network 250 is coupled to compression / encryption systems 110A and 110B, modulation / transmission systems 114A and 114B, network management processors 220A and 220B, and deployed systems 116A and 116B. Using series or sets of redundant Ethernet transceiver devices, 254A - 254E. These transceivers communicate over two or more Ethernet cards, herein referred to as cards A or B, i.e. elements 252 and 252B. It is obvious to the skilled person how the redundancy of the systems and interconnections is to be ensured, and it is evident that additional systems with appropriate interconnections and interface elements can be used as needed to provide higher levels of redundancy.
Redundant processing capabilities are provided to ensure reliable operation in highly time-sensitive and demanding applications, such as movie premieres. Some of the redundant components can run in standby or hot start mode to ensure fast selection and switching.
As previously described, the audiovisual program material is distributed from the main hub 102 to the presentation systems or theater systems 104. Figures 9-11 show and are described below, exemplary embodiments of processing blocks of the theater system 104.
Fig. 9 shows the receiver / demodulator 120 of a theater system 104. The receiver / demodulator 120 includes an outdoor unit 270 which includes a low noise block and a parabolic reflector antenna for satellite 106. Outdoor unit 270 receives the signal transmitted from the main concentrator 102, amplifies it, and converts it to an intermediate frequency (IF) in preparation. for further processing. The reflector antenna is typically an offset fed reflector antenna. The size of the antenna typically ranges from 1.0 to 1.6 meters in diameter, depending on the geographic location of the receiver and the frequencies of interest. The reflector antenna PL 193 224 B1 can be mounted in poles, whether or not passing through the roof structure. Typically the size of the reflector will be designed to be small enough to avoid being restricted by various state and other regulations. The low noise block is usually a typical low noise block for standard digital television (DVB LNB - digital video broadcast Iow noise block), which amplifies the received signal and performs lowering by IF. for processing in a demodulator. In one embodiment, the output from the LNB is an IF signal. in the L-band frequency range. The LNB block is equipped with a horn installed in the focus of the reflector antenna. The LNB is connected by a standard coaxial cable to the demodulator 272 of the receiver / demodulator 120.
The receiver / demodulator 120 also includes a demodulator 272, an automatic request for retransmission (ARQ) processor 274, and a transport demultiplexer 276. In a preferred embodiment, these three components are implemented as an insert unit with circuits for a general-purpose computer as known in the art. an IBM compatible personal computer or workstation. The circuit insert assembly may be installed within the theater management system 122.
While the program material is broadcast from the main hub 102, and while the theater system 104 is capable of receiving all broadcasts, system 104 of the received programs will selectively demodulate and store only programs intended for a particular theater system. Control information is included in the broadcast signal informing theater systems of programs specifically intended for them by multiplexing the control information in the broadcast program stream.
The demodulator 272 recreates the data and clock of the selected program material from the RF signal. received from outer block 270. The demodulator 270 may implement any number of demodulation methods such as a QPSK demodulation method when the program is QPSK modulated. The demodulator 270 may be a standard integrated circuit, such as that normally used in direct television reception equipment. Such demodulation devices typically include signal processing functions related to forward error correction (FEC = forward error correction). Error correction may be performed, for example, using convolutional coding with Viterbi decoding in combination with Reed-Solomon coding and decoding. In a preferred embodiment, the convolutional code is a code with the parameters k = 7, r = 7/8, and the Reed-Solomon code is a code (204,188). The error-corrected output is fed to the ARQ processor 274.
ARQ processor 274 performs additional error correction in the signals from demodulator 270. ARQ processor 274 calculates the digital signature using methods such as cyclic redundancy check (CRC) codes, blocks of fixed length sequence data of the demodulated signal. The resulting computed digital signature for each block is compared to the digital signature value that was computed using the same digital signature algorithm by the modulation / transmission system 114 of the hub 102, and that was transmitted with the data stream on the satellite channel. If the digital signature computed by the ARQ processor 274 is not identical to the signature transmitted with the data, an error indication occurs. Each such data block is uniquely identified with the value of the block identifier. ARQ processor 274 stores a block identifier value for each block having a difference in the computed and transmitted signature value for that block. The theater management system 122 may use reverse link 284 to request retransmission of any or all blocks with mismatched digital signatures. The network management system 112 may then retransmit the blocks requested by the theater systems 104. Theater theater management system 122 may replace blocks where the transmitted signatures and locally computed signatures are not identical with re-transmitted blocks with the same identifier values. Such methods greatly reduce the resulting error rate of the received signals. Data output from ARQ processor 274 preferably has an error rate of -10-11 comprised between 1x10<sup>-10</sup> a 1x10<sup>-11</sup>, or below. The data is then passed to a transport demultiplexer 276.
The transport demultiplexer 276 unpacks the demodulated data stream, sends command packets to theater management system 122, and transmits compressed / encrypted image and audio packets to memory area 124.
PL 193 224 B1
Fig. 10 shows an exemplary theater management system 122. The theater management system 122 provides operational control and monitoring of the entire presentation or theater system 104, or auditoriums within the theater complex. The theater management system may also use program material control means or a mechanism for creating program sets from one or more received individual image and audio programs that are scheduled to be presented to the auditorium system during the authorization period.
The theater management system 122 includes a theater management processor 280 and at least one modem 282, or other devices that constitute an uplink interface, for messaging back to the root hub 102 via uplink 284. The theater management system 122 includes a visual display element, e.g., a monitor, and a user interface device, e.g., a keyboard, which may be located at the theater complex management office, ticket office, or any other convenient location for theater operations.
The theater management 280 processor is typically a commercial standard or professional grade computer. In Fig. 10 taken in conjunction with Fig. 2, the theater management processor 280 communicates with memory areas 124A-124N, decoder modules 130, and the digital tape recorder 136 via the theater interface network 136. The theater management processor 280 communicates with the management system 112 of the primary concentrator network via uplink 284. In a preferred embodiment, modem 282 is used to communicate with a root hub 102. Modem 282 is typically a standard telephone line modem that is housed within or attached to a processor and attaches to a standard two-wire telephone line to provide feedback to the concentrator. main 102. In other embodiments, messages between the theater management processor 280 and the central hub 102 may be sent using other low speed telecommunication methods such as private or public data networks Internet, wireless or satellite communication systems. For these alternatives, modem 282 is configured to provide the appropriate interface structure.
Information conveyed over uplink 284 includes retransmission requests for information received by theater system 104 from satellite 106 that has been marked as including bit uncorrectable errors, monitoring and control information, operational reports and alarms, and possibly cryptographic key information. Messages transmitted on the uplink 284 may be cryptographically protected to provide anti-eavesdropping protection and / or verification and authorization.
The theater management processor 280 may be configured to provide the fully automatic operation of the display system, including playback / display control, network protection and management functions. The theater management processor 280 may also provide control of peripheral theater functions, such as ticket booking and selling, licensing operations, and environmental control. The theater management processor 280 may also interface to some existing automation systems in the complex to control or adjust these functions. In yet another embodiment, control of some theater functions, such as, for example, playback / display and protection, may be by radio from the hub. main 102. The type of system used will depend on the technology available and the known needs of the particular theater.
By controlling by either the theater management system 122 or the network management system of the present invention, it is possible to support the playback and display of stored program material simultaneously on multiple display projectors. A plurality of programs may be stored in a central memory system including memory areas 124A-124N for playback on one or more of the plurality of display projectors in the theater system 104. As discussed previously, theater system 104 may also display program material as received from a broadcast channel, thus bypassing the system's recording capabilities.
Moreover, under the control of the theater management system 122 or the network management system, it is possible to authorize the program material for multiple playback frequently, even if the theater system 104 only needs to receive the program material once. Security management controls the period of time and / or the number of plays allowed for each program.
It can be seen that by automated control of the theater management system 122 by the network management system 112 of the central unit, means are obtained.
For automatic distribution, storage and presentation of programs under program control from a central device. In addition, it is possible to control some pre-selected network operations from a location remote from the central unit using control capabilities. For example, a TV or movie studio can help automate and control the distribution of movies or other presentations from a central location such as a studio, and make almost instantaneous changes to presentations to accommodate rapid changes in market demand or response to presentations, or for other known reasons obvious to specialists.
2, it can be seen that the interface network 126 physically connects theater management system 122, memory areas 124A-124N, auditoriums 128A-128M, and digital tape recorder 136. Theater interface network 126 consists of a local area network (electrical or optical), which provides local routing of program material in the theater system 104. Programs received and demodulated by receiver / demodulator 120 are routed through theater interface network 126 to memory areas 124A-124N for storage. Programs stored in memory areas 124A-124N or received for real-time playback are routed through theater interface network 126 to one or more projection systems in theater system 104. The theater interface network may be implemented using any number of standard local area network structures with suitable data rates, connectivity, and reliability, e.g., arbitrage loop, switched or socket-oriented networks.
Still referring to Fig. 2, it should be noted that memory areas 124A-124N provide local storage for program material that is authorized to reproduce the display. In a preferred embodiment, the storage system is centralized in each theater system. Memory areas 124A-124N allow the theater system to create presentation events in one or more auditoriums, and may be shared by several auditoriums simultaneously.
Memory areas 124A-124N, sometimes also referred to as disk storage areas 124A -124N, may include known semiconductor, magnetic, or optical storage devices. In preferred embodiments, magnetic disk drives known in the art, known as hard disks, are used to form the memory areas. Such devices have desirable cost and performance (baud rate) parameters which make them very suitable for the purposes of the present invention. They represent a well-known technique and are produced with ever larger capacities. However, other devices may be useful in some applications, such as rewritable optical storage devices and even semiconductor devices.
The central memory system can store several programs simultaneously. The central storage system is connected via a local area network such that any program can be played and presented on any authorized presentation system (i.e., projector). Also, the same program may be played simultaneously on two or more presentation systems.
As discussed above, the memory areas may be used to convey the compressed information of a single image program to different audiences with pre-selected programmable reciprocal offsets or time delays. When these offsets are selected to be substantially zero, a single image program is presented to multiple audiences substantially simultaneously. In other cases, these offsets are set to different values due to the adaptation to different planning methods.
Each of the auxiliary storage areas 124A -124N is a bank of hard drives that stores encrypted / compressed programs for scheduled recovery periods in designated auditoriums. Disk storage regions 124A - 124N are designed to be scaled for efficiently accomplishing storage tasks from any theater. In addition, each of the disk storage areas 124A-124N includes built-in redundancy to avoid loss of stored program information in the event of a memory block failure. For example, each of areas 124A-124N may be a rack-mountable system, expandable to accommodate the changing system storage requirements of each theater. The use of disk storage areas 124A-124N enables theater management to dynamically route bottom program shows to various screens in the theater complex and to pre-schedule programming.
PL 193 224 B1
This is done in a highly flexible manner that is suitable for responding quickly to changing needs or market requirements.
In a preferred embodiment, each of the memory areas 124A-124N is designed with a storage capacity equal to the capacity needed to store programs for all auditoriums at the theater location. In addition, adequate capacity is provided to store future programs prior to their showing authorization date, while storing programs currently authorized for the showing. This amount of available storage capacity enables the programs to be authorized for a future show to be stored in hours, days, or weeks, so as to allow such programs to be played and displayed without affecting the ability to play and display programs currently authorized. It is estimated that with regard to digital data storage capacity, this type of structure in the audience uses a storage capacity of 120 Gigabytes. With this capacity, it is assumed that the current compression methods and imaging techniques are used, which may change, allowing the requirements to be reduced in the near future.
The capacity of the memory disk is allocated dynamically to each program loaded in memory areas 124A-124N. This rule works for larger multi-screen theaters, as short and long programs average up to nominal length, usually around two hours. As a guideline in the case of single-screen theaters, the memory capacity should be sufficient to store the longest programs.
Auxiliary storage regions 124A through 124N are typically configured to provide read and write capabilities simultaneously. For example, multiple previously stored programs (with multiple simultaneous or nearly simultaneous individual read operations) may be displayed while a new edit (write operation) is loaded from satellite 106. Using the current technique, there are physical limitations in bandwidth in each area of the disk storage areas 124A-124N. Thus, each area can support a maximum number of concurrent, or nearly simultaneous, screen read operations and one concurrent upload session (one write operation).
When using this procedure, larger movie theaters require additional disk memory areas for an appropriate number of simultaneous recreations. It was found that it would be appropriate to provide one additional area for every five auditors.
However, the capacitive areas should also be configured or configurable to operate in a striping mode where the received information is layered over the entire area. This means that the received data to be stored is partly directed to different drives during writing. Some of the input data is transferred to one drive while another portion is transferred to the next drive, and so on. After a delay time sufficient to allow the drive to write data, the drive in question may be scheduled again to receive input data. Thus, the received data is segregated into smaller components or segments, each of which is stored at the maximum (i.e. high) speed provided by each drive or separate drives, and the advantage of input storage buffering available on the input channel of the drive is obtained. This enables data to be read in essentially parallel, and therefore to achieve a very high transfer speed. This type of memory also provides redundancy to protect against errors.
Data storage in drives or other storage devices should use parity information that allows the program to reassemble after a search. That is, there is a measure to re-consolidate parts of the program at the time of search or presentation.
Each of the auxiliary storage areas 124A-124N is capable of being scaled in two ways. The amount of memory space per screen may be adjusted by adding or removing disk drives in each of the memory areas 124A-124N. The size of disk drives determines the incremental increments that increase storage capacity as drives are introduced. Alternatively, additional areas of disk storage may be added to the theater system 104 to support additional screens.
In the preferred embodiment, each of the disk storage areas 124A-124N is based on a Redundant Array of Inexpensive Devices (RAID) structure, with the ability to recover the entire data file in the event of a disk drive failure. Disk memory areas 124A-124N provide status and warning indicators that are strong for troubleshooting or error detection. Other options available with this type of structure are remote, control and diagnostic status.
As also shown in Fig. 2, theater system 104 typically includes a digital tape recorder (DTR) 136. DTR 136 is used to download a compressed / scrambled program to storage disk areas 124A-124N when a satellite link is not available. and tape is used to distribute the program to the theater. DTR 136 communicates with memory areas 124A-124N over the TIN 126 network.
Typically, the DTR 136 will not operate at transfer rates sufficient to support distribution from the DTR 136 to projection equipment. Read and write operations also tend to occur in series. Thus, large buffers are used for a smooth data flow from the DTR 136 directly to the projection equipment. For these reasons, the DTR 136 is used for archiving and for transfer when no satellite channel is available. Programs downloaded from DTR 136 are stored in memory areas 124A-124N for full speed playback suitable for real time bit rate playback. DTR 136 is controlled from the theater management system 122.
The incorporation of the DTR 136 into the system 104 enables theater complexes to implement and achieve the benefits of a digital cinema system without available satellite links or channels. In this case, digitally processed, encrypted films require physical delivery to theaters on magnetic tape, similar to current film distribution methods. In addition, the DTR 136 may be used to long-term archive programs previously received and stored in memory areas 124A-124N. In this case, a program can be rewritten from memory areas 124A-124N to the DTR 136, and the resulting recorded tape can be stored for later reloading in memory areas 124A-124N. In addition, other known magnetic, optical, or semiconductor devices or methods may be used to perform the functions of the DTR 136.
Prior to intended viewing of the program, it is transmitted from a particular one or more memory areas 124A-124N to a specific one of theater system 104 auditorium systems 128A-128M via theater interface network 126. A block diagram of an exemplary implementation of auditorium system 128A-128M is shown in Fig. 11. Within such auditorium system 128A-128M, the decoder 130A processes a compressed / encrypted program intended for visual projection onto a screen or surface, and displayed acoustically using acoustic systems 134. Auditorium system 128A-128M includes theater interface network 290, at least one unpacking circuit 292, auditorium controller 294, image decryption / decompression system 296, audio decryption / decompression system 298, projector 132A, and sound system 134A. All of these components except the projector 132A and the acoustic system 134A may be implemented in one or more circuit board assemblies. Circuit board assemblies may be installed in a separate housing that attaches to or adjacent to projector 132A. In addition, a cryptographic smart card 300, which borders an auditorium controller 294 and / or an image decryption / decompression system 296, can be used to transfer and store block-specific cryptographic key information.
The theater interface network interface 290 enables each audience to communicate with the disk storage areas 124A-124N or the theater management system 122 via the theater interface network 126. Theater interface network interface 290 includes a buffer memory so that information bursts can be communicated at high data rates from disk storage areas 124A-124N over theater interface network 126 and processed at slower speeds by other auditorium system components 128A-128M.
Control and monitoring data passes between theater management system 122 and auditorium controller 294, while encrypted / compressed programs pass through this interface to image and audio decryption / decompression systems 296, 298. All information directed to audience 128A is received and transmitted to the unpacker 292. Conversely, information directed to other parts of the theater system 104 is ignored by the unpacking device 292.
The unpacker 292 identifies and separates the individual control, image and audio packets arriving from interface 290 of the theater interface network. Control packages are wysy24
They are sent to the audience controller 294, while the image and audio packets are sent to the image and audio decryption / decompression systems 296, 296 and 298, respectively.
Auditorium controller 294 configures auditorium system 128A, manages its security, starts and monitors auditorium system 128A. This one consists of the external, image and audio interfaces of the decryption / decompression systems 296 and 298, along with the projector 132A and the sound system 123A. Control information is received from the theater management system 122, a remote control window, or a local control input, such as a control board external to the enclosure or base of system 128A. The auditorium controller 294 manages the electronic keys associated with the auditorium system 128A. The pre-selected cryptographic keys associated with the system 128 are used in conjunction with electronic cryptographic key information that is embedded in the image and sound data to decrypt the image and acoustic information prior to the decompression process. In a preferred embodiment, controller 294 uses a standard microprocessor to operate embedded audience software 128A as the primary functional or control element.
In addition, the auditorium controller 294 is preferably configured to run or communicate certain information via theater management system 122 to maintain a history of presentations taking place in each auditorium. The information regarding this presentation history is then available to be communicated to the central device 102 on the uplink, or at designated times on the medium being transferred.
The image decryption / decompression system 296 takes a stream of image data from the unpacker 292, performs decryption, and reassembles the original image for display on the screen. Typically, the output of this operation is standard analog RGB signals for a digital cinema projector 132A. Typically, decryption and decompression take place in real time, allowing real-time playback of software material.
The image decryption / decompression system 296 decrypts and decompresses the data stream to reverse the operations performed by the image coprocessor 162 and image scrambler (166) of the main concentrator 102. Each auditorium system 128 may process and display a program other than auditorium systems 128 on the same system. a theater or one or more auditorium systems can process and display the same program simultaneously. Alternatively, the same program can be displayed from multiple projectors with a mutual time delay.
The decryption process uses the previously provided block-specific and program-specific electronic cryptographic key information in combination with electronic keys embedded in the data stream to decrypt the image information (the decryption process has been described previously with reference to Fig. 4). Each auditorium system 128 is provided with the necessary cryptographic key information for all programs authorized to be presented in this auditorium system 128.
A multi-level cryptographic key management system is used to authorize the presentation systems designated to display characteristic programs. This multi-level cryptographic key management system will typically use electronic key values that are specific to each authorized auditorium 128, a distinctive image and / or audio program, and / or time-varying key sequences in an image and / or audio program. An electronic key specific to the audience, usually 56-bit or longer, is programmed in each auditorium system.
This programming can be implemented using several methods of transferring and making the key information available for use. For example, the above-discussed reverse link via a satellite channel or some other type may be used to transmit the cryptographic information. Alternatively, a smart card technique with pre-programmed high-speed memory cards and other known portable memory devices may be used.
For example, a smart card may be designed such that this value, when loaded onto the card, cannot be read from the memory of the smart card. Physical and electronic security measures are used to prevent intrusions with this key information and to detect intrusion attempts or compromise of information. The key is stored in such a way that it can be erased when an intrusion attempt is detected. The smart card chips contain a microprocessor kernel including a software implementation of an encryption algorithm, typically the Data Encryption Standard (DES). The smart card can input the input values supplied thereto, encrypt (or decrypt) these values using the card's DES algorithm and a previously stored audience characteristic code, and output the result. Alternatively, the smart card may be used simply to carry the encrypted electronic key information to circuits in the auditorium system 128 that can process this key information for use by image and audio decryption processes.
The image program data streams are dynamically decompressed the image using inverse ABSDCT or some other image decompression process symmetric to the image compression used in the primary hub compression / encryption system 110. If the image compression is based on the ABSDCT algorithm, the process includes variable-length decoding, inverse frequency weighting, inverse differential quadruple tree transform, IDCT, and elimination of DCT block convolution. The processing elements used for decompression may be implemented in dedicated dedicated hardware configured for the function, such as an ASIC or one or more circuit board assemblies. Alternatively, the decompression processing elements may be implemented as standard components or general purpose devices including various digital signal processors or programmable electronic devices or computers that run under the control of special function software or firmware. Several ASIC type integrated circuits can be implemented for the parallel processing of image information in order to maintain high image transmission rates.
The decompressed image data goes through a digital to analog conversion step and the analog signals are output to projector 132A. Alternatively, it is possible to use a digital interface to pass digital image data to projector 132A bypassing the need for digital to analog conversion.
The audio decryption / decompression system 298 takes a stream of audio data from the unpacker 292, performs decryption, and reassembles the original audio for presentation in the theater loudspeakers or audio acoustics system. The result of this operation is the standard line level audio signals for an audio system 134A.
Similar to the image decryption / decompression system 296, the audio decryption / decompression system 298 reverses the operation performed by the audio compressor 164 and the audio encoder 168 of the root hub 102. Using electronic keys from the cryptographic smart card 304 in conjunction with electronic keys embedded in the data stream. the decryption system 350 decrypts the audio information. The decrypted audio data is then decompressed.
The decompression of the audio is performed by an algorithm symmetric to the algorithm used in the main concentrator 102 to compress the audio. Multiple audio channels, if any, are decompressed. The number of audio channels depends on the multi-phonic structure of the sound system of a particular audience or presentation system. Additional audio channels may be transmitted from the main hub 102 for extended audio programs, for example, for multilingual tracks or audio prompts for people with a hearing impairment. The system can also implement additional data paths synchronized with imaging programs for such purposes as realizing multimedia paths with special effects, subtitles, and special visual cue paths for people with impaired hearing.
As discussed previously, audio and data tracks may be time synchronized with image programs, or they may be displayed asynchronously without tight time synchronization. Image programs can consist of single frames (i.e., still images), sequences of single-frame still images, or movie sequences of short or long duration.
If necessary, the audio channels are fed to an audio delay element which introduces the delay needed to synchronize the audio with the corresponding picture frame. Each channel then undergoes D / A conversion to obtain the known, so-called line level signals for the sound system 134A. This means that analog signals are generated from the digital data of the appropriate level or format to drive the appropriate sound system. The standard XLR or AES / EOU connectors found in most theater sound systems are typically used for line level audio output signals.
PL 193 224 B1
Projector 132A shows an electronic representation of the program on the screen. The high-quality projector is based on advanced technical solutions, for example liquid crystal light valve (LCLV) methods to process optical or image information. Projector 132A receives an image signal from a decryption / decompression system 296, typically in the standard RGB format of the video signal. Information to control and monitor projector 132A is typically communicated via a digital serial interface from the auditorium controller 294.
In the further discussion of Fig. 11, the base 302 of the decoder module includes a fiber channel interface 290, an unpacking circuit 292, an auditorium controller 294, an image decryption / decompression system 296, and a cryptographic smart card 300. The decoder module base 302 is a strong, self-supporting base that also houses the smart card scrambling interface, internal power supply and / or stabilizer, cooling blowers (if necessary), local control board, and external interfaces. The local control board may use any of the known input devices, such as a flat membrane button board with embedded indicators on the LEDs. The local control board typically uses or is part of a hinged access door to allow access to the interior of the base for service or maintenance. These doors are equipped with a security lock that prevents unauthorized entry into the base, theft or tampering with the system. During installation, a cryptographic smart card 300 containing key encryption information is installed inside the base 302 of the decoder module mounted behind the lockable faceplate. The cryptographic smart card slot is accessible only from inside the secured faceplate. The RGB output from image decryption / decompression system 296 to projector 132A is securely connected inside decoder module base 302 such that RGB signals cannot be accessed when decoder module base 302 is installed in the projector housing. Security locking devices may be used to prevent the decoder module from starting when it is not properly installed in the projector 302.
The sound system 134A presents the audio part of the program through the theater speakers. In a preferred embodiment, the audio system 134A receives up to 12 channels of audio signals in a standard, either digital or digital format, from a decryption / decompression system 298.
Accordingly, a digital cinema system and method is proposed for electronically distributing very high quality audio and / or visual program material to cinemas or other viewing locations. The system and method enables flexible scheduling of the presentation of full-length feature films and commercials, the integration of high-quality audio and image signals, and easy implementation of security measures, regardless of other characteristics and advantages of the invention.
The foregoing description of the preferred embodiments has been provided to enable those skilled in the art to make or use the present invention. Possible modifications to these embodiments are apparent to one of ordinary skill in the art, and certain general principles described herein may apply to other embodiments without the need for inventive skills. Thus, the invention is not intended to be limited by the inventors to the preferred embodiments shown, but is intended to conform to the broadest scope consistent with the claimed principles and novel features herein claimed.
Contents13
9 sheets
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84 members in 24 offices
Priority claims7
| Document | Office | Kind | Date |
|---|---|---|---|
| 7515298 | United States of America | A | |
| 7515298 | United States of America | A | |
| 9909418 | United States of America | W | |
| 9909418 | United States of America | W | |
| 09075152 | – | – | – |
| US19980075152 | – | – | – |
| WO1999US09418 | – | – | – |
Members84
| Document | Office | Kind | |
|---|---|---|---|
| CA2331419A1 | Canada | A1 | |
| WO9959335A1 | World Intellectual Property Organization (WIPO) | A1 | |
| AU3774799A | Australia | A | |
| IS5705A | Iceland | A | |
| NO20005619D0 | Norway | D0 | |
| NO20005619L | Norway | L | |
| EP1078517A1 | European Patent Office (EPO) | A1 | |
| AR015084A1 | Argentina | A1 | |
| KR20010043462A | Republic of Korea | A | |
| CA2393029A1 | Canada | A1 | |
| CA2395194A1 | Canada | A1 | |
| WO0141442A1 | World Intellectual Property Organization (WIPO) | A1 | |
| WO0141443A1 | World Intellectual Property Organization (WIPO) | A1 | |
| AU1805301A | Australia | A | |
| AU2055801A | Australia | A | |
| TR2001000162T2 | Türkiye | T2 | |
| TR200100162T2 | Türkiye | T2 | |
| TW454419B | Taiwan Province of China | B | |
| BR9910259A | Brazil | A | |
| CN1316158A | China | A | |
| ID30300A | Indonesia | A | |
| IL139412A0 | Israel | A0 | |
| HK1037830A | Hong Kong, China | A | |
| HK1037830A1 | Hong Kong, China | A1 | |
| MXPA00010957A | Mexico | A | |
| ZA200006134B | South Africa | B | |
| US2002056081A1 | United States of America | A1 | |
| JP2002515701A | Japan | A | |
| PL348663A1 | Poland | A1 | |
| KR20020058065A | Republic of Korea | A | |
| KR20020058068A | Republic of Korea | A | |
| HU0200780A2 | Hungary | A2 | |
| HUP0200780A2 | Hungary | A2 | |
| EP1236353A1 | European Patent Office (EPO) | A1 | |
| EP1249126A1 | European Patent Office (EPO) | A1 | |
| IL149658A0 | Israel | A0 | |
| IL149949A0 | Israel | A0 | |
| TW515205B | Taiwan Province of China | B | |
| TW516323B | Taiwan Province of China | B | |
| MXPA02005345A | Mexico | A | |
| NZ507867A | New Zealand | A | |
| MXPA02005349A | Mexico | A | |
| JP2003516052A | Japan | A | |
| BR0016054A | Brazil | A | |
| BR0016107A | Brazil | A | |
| CN1433636A | China | A | |
| CN1433637A | China | A | |
| JP2003523653A | Japan | A | |
| AR030038A1 | Argentina | A1 | |
| ZA200204074B | South Africa | B | |
| US2003206635A1 | United States of America | A1 | |
| AU767624B2 | Australia | B2 | |
| HK1055524A1 | Hong Kong, China | A1 | |
| UA63006C2 | Ukraine | C2 | |
| ZA200204170B | South Africa | B | |
| RU2002117435A | Russian Federation | A | |
| RU2002117434A | Russian Federation | A | |
| AR035021A1 | Argentina | A1 | |
| NZ519132A | New Zealand | A | |
| NZ519095A | New Zealand | A | |
| RU2238614C2 | Russian Federation | C2 | |
| CN1205816C | China | C | |
| US2005135619A1 | United States of America | A1 | |
| RU2257015C2 | Russian Federation | C2 | |
| RU2257686C2 | Russian Federation | C2 | |
| US6985589B2 | United States of America | B2 | |
| CN1252996C | China | C | |
| KR100671188B1 | Republic of Korea | B1 | |
| PL193224B1This record | Poland | B1 | |
| KR100751648B1 | Republic of Korea | B1 | |
| US2007245386A1 | United States of America | A1 | |
| KR100791825B1 | Republic of Korea | B1 | |
| AR058202A2 | Argentina | A2 | |
| CN100380968C | China | C | |
| IL149658A | Israel | A | |
| WO2008089146A2 | World Intellectual Property Organization (WIPO) | A2 | |
| WO2008089146A3 | World Intellectual Property Organization (WIPO) | A3 | |
| TW200850003A | Taiwan Province of China | A | |
| JP2009043395A | Japan | A | |
| CA2331419C | Canada | C | |
| JP2012191633A | Japan | A | |
| JP2012213164A | Japan | A | |
| JP5490846B2 | Japan | B2 | |
| US8813137B2 | United States of America | B2 |
1 legal event, as the office reported them to INPADOC
Events
| Event | Code | |
|---|---|---|
| Decisions on the lapse of the protection rightsLapsedLAPS | LAPS |
Numbers
- Publication
- 193224
- Publication, DOCDB
- 193224
- Publication, EPODOC
- PL193224B
- Application
- 348663
- Application, DOCDB
- 34866399
- Application, EPODOC
- PL19990348663
Titles2
- English
- APPARATUS AND METHOD FOR DISTRIBUTION OF HIGH QUALITY IMAGE AND AUDIO PROGRAMS TO REMOTE LOCATIONS
- Polish
- Sposób i urządzenie do rozprowadzania informacji obrazu i dźwięku, sposób i urządzenie do przesyłania danych obrazu oraz sposób i urządzenie do wyświetlania programów obrazowych
Classification
- CPC, 12
- H04N21/436
- H04N21/23
- H04N7/165
- H04N7/1675
- H04N7/17336
- H04N21/2347
- H04N21/4122
- H04N21/4131
- H04N21/41415
- H04N21/4405
- H04N21/4623
- H04N21/43
- IPC, 7
- H04N5 765
- H04N21 23
- H04N5 91
- H04N7 16
- H04N7 167
- H04N7 173
- H04N21 43
