IP Library Patent Application 19190251
Patent Application
App. No. 19/190,251

APPARATUS AND METHOD FOR CODING/DECODING IMAGE SELECTIVELY USING DISCRETE COSINE/SINE TRANSFORM

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Quick Facts
Patent No.
US None
App. No.
19/190,251
Abstract

Disclosed is a data transmission system that transmits data by using a relay. The relay selects a transmission terminal from among a plurality of terminals accessing a base station. A base station transmits base station data to the relay during a first time slot, and the transmission terminal transmits terminal data to the relay. The relay transmits terminal data to the base station during a second time slot, and transmits base station data to the transmission terminal.

Claims (30)

1 . An image decoding apparatus comprising:

a memory; and

at least one processor connected to the memory, the at least one processor configured to:

determine a set of scaling factors for inverse-quantizing transform coefficients of a current block based on a size of the current block;

inverse-quantize the transform coefficients of the current block based on the set of scaling factors and a quantization variable given by dividing a quantization parameter by a pre-determined constant value;

decide an inverse-transform scheme with respect to the transform coefficients of the current block as one of discrete cosine transform (DCT) and discrete sine transform (DST); and

generate a decoded image based on the inverse-quantized transform coefficients according to the decided inverse-transform scheme,

wherein the inverse-quantizing is performed based on multiplying each of the transform coefficients of the current block to a corresponding scaling factor among the set of scaling factors and left-shifting a result of the multiplication of the each of the transform coefficients with the corresponding scaling factor,

wherein the set of scaling factors is determined by selectively using one of a first predefined table from which one or more first candidate tables for a 4×4 block are derivable, each of the one or more first candidate tables for the 4×4 block specifying sixteen explicit integer values mapping one-to-one for sixteen locations in the 4×4 block and a second predefined table from which one or more second candidate tables for an 8×8 block are derivable, each of the one or more second candidate tables for the 8×8 block specifying sixty four explicit integer values mapping one-to-one for sixty four locations in the 8×8 block according to the size of the current block, each of the first candidate tables comprises ‘n’ distinct values, ‘n’ being smaller than 16, each of the second candidate tables comprises ‘m’ distinct values, ‘m’ being smaller than 64, and ‘n’ being smaller than ‘m’.

2 . The image decoding apparatus of claim 1 ,

wherein the left-shifting is performed by the quantization variable.

3 . The image decoding apparatus of claim 1 , wherein the at least one processor is further configured to:

generate a prediction image with respect to the transform coefficients based on a reference image; and

generate a restoration image based on the prediction image and the decoded image.

4 . An image encoding apparatus comprising:

a memory; and

at least one processor connected to the memory, the at least one processor configured to:

inverse-quantize transform coefficients of a current block based on a set of scaling factors and a quantization variable given by dividing a quantization parameter by a pre-determined constant value, the set of scaling factors being determined based on a size of the current block;

inverse-transform the inverse-quantized transform coefficients based on a transform scheme, the transform scheme with respect to transform coefficients of the block being decided as one of the discrete cosine transform (DCT) and the discrete sine transform (DST); and

generate a decoded image based on the inverse-transformed and inverse-quantized transform coefficients,

wherein the inverse-quantizing is performed based on multiplying each of the transform coefficients of the current block to a corresponding scaling factor among the set of scaling factors and left-shifting a result of the multiplication of the each of the transform coefficients with the corresponding scaling factor,

wherein the set of scaling factors is determined by selectively using one of a first predefined table from which one or more first candidate tables for a 4×4 block are derivable, each of the one or more first candidate tables for the 4×4 block specifying sixteen explicit integer values mapping one-to-one for sixteen locations in the 4×4 block and a second predefined table from which one or more second candidate tables for an 8×8 block are derivable, each of the one or more second candidate tables for the 8×8 block specifying sixty four explicit integer values mapping one-to-one for sixty four locations in the 8×8 block according to the size of the current block, each of the first candidate tables comprises ‘n’ distinct values, ‘n’ being smaller than 16, each of the second candidate tables comprises ‘m’ distinct values, ‘m’ being smaller than 64, and ‘n’ being smaller than ‘m’.

5 . A n apparatus for transmitting a bitstream, the apparatus comprising:

at least one processor configured to obtain the bitstream; and

a transmitter configured to transmit the bitstream generated by an image encoding method, the image encoding method comprising:

inverse-quantizing transform coefficients of a current block based on a set of scaling factors and a quantization variable given by dividing a quantization parameter by a pre-determined constant value, the set of scaling factors being determined based on a size of the current block;

inverse-transforming the inverse-quantized transform coefficients based on a transform scheme, the transform scheme with respect to transform coefficients of the block being decided as one of the discrete cosine transform (DCT) and the discrete sine transform (DST); and

generating a decoded image based on the inverse-transformed and inverse-quantized transform coefficients,

wherein the inverse-quantizing is performed based on multiplying each of the transform coefficients of the current block to a corresponding scaling factor among the set of scaling factors and left-shifting a result of the multiplication of the each of the transform coefficients with the corresponding scaling factor,

wherein the set of scaling factors is determined by selectively using one of a first predefined table from which one or more first candidate tables for a 4×4 block are derivable, each of the one or more first candidate tables for the 4×4 block specifying sixteen explicit integer values mapping one-to-one for sixteen locations in the 4×4 block and a second predefined table from which one or more second candidate tables for an 8×8 block are derivable, each of the one or more second candidate tables for the 8×8 block specifying sixty four explicit integer values mapping one-to-one for sixty four locations in the 8×8 block according to the size of the current block, each of the first candidate tables comprises ‘n’ distinct values, ‘n’ being smaller than 16, each of the second candidate tables comprises ‘m’ distinct values, ‘m’ being smaller than 64, and ‘n’ being smaller than ‘m’.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 6, 2025
From: INTELLECTUAL DISCOVERY CO., LTD.
To: DOLBY LABORATORIES LICENSING CORPORATION
Reel/Frame 071034/0790 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 5, 2025
From: ELECTRONICS AND TELECOMMUNICATIONS RESEARCH INSTITUTE
To: INTELLECTUAL DISCOVERY CO., LTD.
Reel/Frame 071021/0166 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 2, 2025
From: LIM, SUNG CHANG; JEONG, SE YOON; CHOI, HAE CHUL; CHOI, JIN SOO; HONG, JIN WOO; LEE, YUNG LYUL; KIM, DAE YEON
To: ELECTRONICS AND TELECOMMUNICATION RESEARCH INSTITUTE
Reel/Frame 071011/0829 →