The present invention relates to audio signal encoding, decoding and processing, and, in particular, to an encoder, a decoder and a method, which employ residual concepts for parametric audio object coding.
Recently, parametric techniques for the bitrate-efficient transmission/storage of audio scenes comprising multiple audio objects have been proposed in the field of audio coding (see, e.g., [BCC], [JSC], [SAOC], [SAOC1] and [SAOC2]) and informed source separation (see, e.g., [ISS1], [ISS2], [ISS3], [ISS4], [ISS5] and [ISS6]). These techniques aim at reconstructing a desired output audio scene or a desired audio source object on the basis of additional side information describing the transmitted and/or stored audio scene and/or the audio source objects in the audio scene.
The general processing is carried out in a time/frequency selective way and can be described as follows:
The SAOC encoder 510, in particular, a side information estimator 530 of the SAOC encoder 510, extracts the side information describing the characteristics of the maximum 32 input audio object signals s1 . . . s32 (in its simplest form the relations of the object powers of the audio object signals). A mixer 520 of the SAOC encoder 510 downmixes the audio object signals s1 . . . s32 to obtain a mono or 2-channel signal mixture (i.e., one or two downmix signals) using the downmix gain factors d1,1 . . . d32,2.
The downmix signal(s) and side information are transmitted or stored. To this end, the downmix audio signal(s) may be encoded using an audio encoder 540. The audio encoder 540 may be a well-known perceptual audio encoder, for example, an MPEG-1 Layer II or III (aka .mp3) audio encoder, an MPEG Advanced Audio Coding (AAC) audio encoder, etc.
On a receiver side, a corresponding audio decoder 550, e.g., a perceptual audio decoder, such as an MPEG-1 Layer II or III (aka .mp3) audio decoder, an MPEG Advanced Audio Coding (AAC) audio decoder, etc. decodes the encoded downmix audio signal(s).
An SAOC decoder 560 conceptually attempts to restore the original (audio) object signals (“object separation”) from the one or two downmix signals using the transmitted and/or stored side information, e.g., by employing a virtual object separator 570. These approximated (audio) object signals s1,est . . . s32,est are then mixed by a renderer 580 of the SAOC decoder 560 into a target scene represented by a maximum of 6 audio output channels y1,est . . . y6,est using a rendering matrix (described by the coefficients r1,1 . . . r32,6). The output can be a single-channel, a 2-channel stereo or a 5.1 multi-channel target scene (e.g., one, two or six audio output signals).
Due to the underlying limitations of the parametric estimation of the audio objects at the decoding side; in most cases, the desired target output scene cannot be perfectly generated. At extreme operating points (for example, solo playback of one audio object), often, the processing can no longer achieve an adequate subjective sound. To this end, the SAOC scheme has been extended by introducing Enhanced Audio Objects (EAOs) (see, e.g., [Dfx], see, e.g., moreover, [SAOC]). Audio objects that are encoded as EAOs exhibit an increased separation capability from the other (regular) non-Enhanced Audio Objects (non-EAOs) encoded in the same downmix signal at the expense of an increased side information rate. The EAO concept considers for each EAO the prediction error (residual signal) of the parametric model.
Downmix signal oriented parameters, namely, Channel Prediction Coefficients (CPCs) are derived from the Parametric Side Info (PSI) by a CPC Estimation unit 710.
The CPCs together with the downmix signal are fed into a Two-to-N-box (TTN-box) 720. The TTN-box 720 conceptually tries to estimate the EAOs (sest,EAO) from the transmitted downmix signal (X) and to provide an estimated non-EAO downmix (Xest,nonEAO) consisting of only non-EAOs.
The transmitted/stored (and decoded) residual signals (sres, RSI) are used by a RSI processing unit 730 to enhance the estimates of the EAOs (sest, EAO) and the corresponding downmix of only non-EAO objects (XnonEAO).
According to the state of the art, in the next step, the RSI processing unit 730 feeds the non-EAO downmix signal (XnonEAO) into a SAOC downmix processor (a PSI decoding unit) 740 to estimate the non-EAO objects sest,nonEAO. The PSI decoding unit 740 passes the estimated non-EAO audio objects sest,nonEAO to the rendering unit 750. Moreover, the RSI processing unit directly feeds the enhanced EAOs ŝest,EAO into the rendering unit 750. The rendering unit 750 then generates mono or stereo output signals based on the estimated non-EAO audio objects sest,nonEAO and based on the enhanced EAOs ŝest,EAO.
The state of the art system has the following drawbacks:
Before the residual signals are applied to calculate EAOs in the SAOC decoder, downmix-oriented CPCs have to be computed from the transmitted/stored parametric side information.
All downmix signals have to be processed within the SAOC residual concept regardless of their usefulness for the EAO processing.
The SAOC residual concept can only be used with single- or two-channel signal mixtures due to the limitations of the TTN-box. The EAO residual concept cannot be used in combination with multi-channel mixtures (e.g., 5.1 multi-channel mixtures).
Furthermore, due to the corresponding computational complexity of their estimation, the SAOC EAO processing sets limitations on the number of EAOs (i.e., up to 4).
Because of these limitations, the SAOC EAO residual handling concept cannot be applied to multi-channel (e.g., 5.1) downmix signals or used for more than 4 EAOs.
According to an embodiment, a decoder may have: a parametric decoding unit for generating a plurality of first estimated audio object signals by upmixing three or more downmix signals, wherein the three or more downmix signals encode a plurality of original audio object signals, wherein the parametric decoding unit is configured to upmix the three or more downmix signals depending on parametric side information indicating information on the plurality of original audio object signals, and a residual processing unit for generating a plurality of second estimated audio object signals by modifying one or more of the first estimated audio object signals, wherein the residual processing unit is configured to modify said one or more of the first estimated audio object signals depending on one or more residual signals.
According to another embodiment, a residual signal generator may have: a parametric decoding unit for generating a plurality of estimated audio object signals by upmixing three or more downmix signals, wherein the three or more downmix signals encode a plurality of original audio object signals, wherein the parametric decoding unit is configured to upmix the three or more downmix signals depending on parametric side information indicating information on the plurality of original audio object signals, and a residual estimation unit for generating a plurality of residual signals based on the plurality of original audio object signals and based on the plurality of estimated audio object signals, such that each of the plurality of residual signals is a difference signal indicating a difference between one of the plurality of original audio object signals and one of the plurality of estimated audio object signals.
According to another embodiment, an encoder for encoding a plurality of original audio object signals by generating three or more downmix signals, by generating parametric side information and by generating a plurality of residual signals, may have: a downmix generator for providing the three or more downmix signals indicating a downmix of the plurality of original audio object signals, a parametric side information estimator for generating the parametric side information indicating information on the plurality of original audio object signals, to obtain the parametric side information, and an inventive residual signal generator, wherein the parametric decoding unit of the residual signal generator is adapted to generate a plurality of estimated audio object signals by upmixing the three or more downmix signals provided by the downmix generator, wherein the downmix signals encode the plurality of original audio object signals, wherein the parametric decoding unit is configured to upmix the three or more downmix signals depending on the parametric side information generated by the parametric side information estimator, and wherein the residual estimation unit of the residual signal generator is adapted to generate the plurality of residual signals based on the plurality of original audio object signals and based on the plurality of estimated audio object signals, such that each of the plurality of residual signals indicates a difference between one of the plurality of original audio object signals and one of the plurality of estimated audio object signals.
According to another embodiment, a system may have: an inventive encoder for encoding a plurality of original audio object signals by generating three or more downmix signals, by generating parametric side information and by generating a plurality of residual signals, and an inventive decoder, wherein the decoder is configured to generate a plurality of second estimated audio object signals based on the three or more downmix signals being generated by the encoder, based on the parametric side information being generated by the encoder and based on the plurality of residual signals being generated by the encoder.
Another embodiment may have an encoded audio signal, having three or more downmix signals, parametric side information and a plurality of residual signals, wherein the three or more downmix signals are a downmix of a plurality of original audio object signals, wherein the parametric side information includes parameters indicating side information on the plurality of original audio object signals, wherein each of the plurality of residual signals is a difference signal indicating a difference between one of the plurality of original audio signals and one of a plurality of estimated audio object signals.
According to another embodiment, a method may have the steps of: generating a plurality of first estimated audio object signals by upmixing three or more downmix signals, wherein the three or more downmix signals encode a plurality of original audio object signals, wherein generating the plurality of first estimated audio object signals includes upmixing the three or more downmix signals depending on parametric side information indicating information on the plurality of original audio object signals, and generating a plurality of second estimated audio object signals by modifying one or more of the first estimated audio object signals, wherein generating a plurality of second estimated audio object signals includes modifying said one or more of the first estimated audio object signals depending on one or more residual signals.
According to another embodiment, a method may have the steps of: generating a plurality of estimated audio object signals by upmixing three or more downmix signals, wherein the three or more downmix signals encode a plurality of original audio object signals, wherein generating the plurality of estimated audio object signals includes upmixing the three or more downmix signals depending on parametric side information indicating information on the plurality of original audio object signals, and generating a plurality of residual signals based on the plurality of original audio object signals and based on the plurality of estimated audio object signals, such that each of the plurality of residual signals is a difference signal indicating a difference between one of the plurality of original audio object signals and one of the plurality of estimated audio object signals.
Another embodiment may have a computer program for implementing the inventive methods when being executed on a computer or signal processor.
A decoder is provided. The decoder comprises a parametric decoding unit for generating a plurality of first estimated audio object signals by upmixing three or more downmix signals, wherein the three or more downmix signals encode a plurality of original audio object signals, wherein the parametric decoding unit is configured to upmix the three or more downmix signals depending on parametric side information indicating information on the plurality of original audio object signals. Moreover, the decoder comprises a residual processing unit for generating a plurality of second estimated audio object signals by modifying one or more of the first estimated audio object signals, wherein the residual processing unit is configured to modify said one or more of the first estimated audio object signals depending on one or more residual signals.
Embodiment present an object oriented residual concept which improves the perceived quality of the EAOs. Unlike the state of the art system, the presented concept is neither restricted to the number of downmix signals nor to the number of EAOs. Two methods for deriving object related residual signals are presented. A cascaded concept with which the energy of the residual signal is iteratively reduced with increasing number of EAOs at the cost of higher computational complexity, and a second concept with less computational complexity in which all residuals are estimated simultaneously.
Furthermore, embodiments provide an improved concept of applying object oriented residual signals at the decoder side, and concepts with reduced complexity designed for application scenarios in which only the EAOs are manipulated at the decoder side, or the modification of the non-EAOs is restricted to a gain scaling.
According to an embodiment, the residual processing unit may be configured to modify the said one or more of the first estimated audio object signals depending on at least three residual signals. The decoder is adapted to generate at least three audio output channels based on the plurality of second estimated audio object signals.
According to an embodiment, the decoder further may comprise a downmix modification unit. The residual processing unit may determine one or more audio object signals of the plurality of second estimated audio object signals. The downmix modification unit may be adapted to remove the determined one or more second estimated audio object signals from the three or more downmix signals to obtain three or more modified downmix signals. The parametric decoding unit may be configured to determine one or more audio object signals of the first estimated audio object signals based on the three or more modified downmix signals.
In a particular embodiment, the downmix modification unit may, for example, be adapted to apply the formula
{tilde over (X)}nonEAO=X−DZ*eaoSeao.
Moreover, the decoder may be adapted to conduct two or more iteration steps. For each iteration step, the parametric decoding unit may be adapted to determine exactly one audio object signal of the plurality of first estimated audio object signals. Moreover, for said iteration step, the residual processing unit may be adapted to determine exactly one audio object signal of the plurality of second estimated audio object signals by modifying said audio object signal of the plurality of first estimated audio object signals. Furthermore, for said iteration step, the downmix modification unit may be adapted to remove said audio object signal of the plurality of second estimated audio object signals from the three or more downmix signals to modify the three or more downmix signals. In the next iteration step following said iteration step, the parametric decoding unit may be adapted to determine exactly one audio object signal of the plurality of first estimated audio object signals based on the three or more downmix signals which have been modified.
In an embodiment, each of the one or more residual signals may indicate a difference between one of the plurality of original audio object signals and one of the one or more first estimated audio object signals.
According to an embodiment, wherein the residual processing unit may be adapted to generate the plurality of second estimated audio object signals by modifying five or more of the first estimated audio object signals, wherein the residual processing unit may be configured to modify said five or more of the first estimated audio object signals depending on five or more residual signals.
In another embodiment, the decoder may be configured to generate seven or more audio output channels based on the plurality of second estimated audio object signals.
According to a further embodiment, the decoder may be adapted to not determine Channel Prediction Coefficients to determine the plurality of second estimated audio object signals. Embodiments provide concepts so that the calculation of the Channel Prediction Coefficients that have so far been necessitated for decoding in state-of-the-art SAOC, is no longer necessitated for decoding.
In a further embodiment, the decoder may be an SAOC decoder.
Moreover, a residual signal generator is provided. The residual signal generator comprises a parametric decoding unit for generating a plurality of estimated audio object signals by upmixing three or more downmix signals, wherein the three or more downmix signals encode a plurality of original audio object signals, wherein the parametric decoding unit is configured to upmix the three or more downmix signals depending on parametric side information indicating information on the plurality of original audio object signals. Moreover, the residual signal generator comprises a residual estimation unit for generating a plurality of residual signals based on the plurality of original audio object signals and based on the plurality of estimated audio object signals, such that each of the plurality of residual signals is a difference signal indicating a difference between one of the plurality of original audio object signals and one of the plurality of estimated audio object signals.
In an embodiment, the residual estimation unit may be adapted to generate at least five residual signals based on at least five original audio object signals of the plurality of original audio object signals and based on at least five estimated audio object signals of the plurality of estimated audio object signals.
In an embodiment, the residual signal generator may further comprise a downmix modification unit being adapted to modify the three or more downmix signals to obtain three or more modified downmix signals. The parametric decoding unit may be configured to determine one or more audio object signals of the first estimated audio object signals based on the three or more modified downmix signals.
In an embodiment, the downmix modification unit may, for example, be configured to modify the three or more original downmix signals to obtain the three or more modified downmix signals, by removing one or more of the plurality of original audio object signals from the three or more original downmix signals.
In another embodiment, the downmix modification unit may, for example, be configured to modify the three or more original downmix signals to obtain the three or more modified downmix signals by generating one or more modified audio object signals based on one or more of the estimated audio object signals and based on one or more of the residual signals, and by removing the one or more modified audio object signals from the three or more original downmix signals. E.g. each of the one or more modified audio object signals may be generated by the downmix modification unit by modifying one of the estimated audio object signals, wherein the downmix modification unit may be adapted to modify said estimated audio object signal depending on one of the one or more residual signals.
In both of the embodiments described above, the downmix modification unit may, for example, be adapted to apply the formula {tilde over (X)}=X−DZeao*Seao, wherein X is the downmix to be modified, wherein D indicates downmixing information, wherein Seao comprises the original audio object signals to be removed or the modified audio object signals, wherein Zeao* indicates the locations of the signals to be removed, and wherein X is the modified downmix signal. E.g., a location (position) of an audio object signal corresponds to the location (position) of its audio object in the list of all objects.
According to an embodiment, the residual signal generator may be adapted to conduct two or more iteration steps. For each iteration step, the parametric decoding unit may be adapted to determine exactly one audio object signal of the plurality of estimated audio object signals. Moreover, for said iteration step, the residual estimation unit may be adapted to determine exactly one residual signal of the plurality of residual signals by modifying said audio object signal of the plurality of estimated audio object signals. Furthermore, for said iteration step, the downmix modification unit may be adapted to modify the three or more downmix signals. In the next iteration step following said iteration step, the parametric decoding unit may be adapted to determine exactly one audio object signal of the plurality of estimated audio object signals based on the three or more downmix signals which have been modified.
In an embodiment, an encoder for encoding a plurality of original audio object signals by generating three or more downmix signals, by generating parametric side information and by generating a plurality of residual signals is provided. The encoder comprises a downmix generator for providing the three or more downmix signals indicating a downmix of the plurality of original audio object signals. Moreover, the encoder comprises a parametric side information estimator for generating the parametric side information indicating information on the plurality of original audio object signals, to obtain the parametric side information. Furthermore, the encoder comprises a residual signal generator according to one of the above-described embodiments. The parametric decoding unit of the residual signal generator is adapted to generate a plurality of estimated audio object signals by upmixing the three or more downmix signals provided by the downmix generator, wherein the downmix signals encode the plurality of original audio object signals. The parametric decoding unit is configured to upmix the three or more downmix signals depending on the parametric side information generated by the parametric side information estimator. The residual estimation unit of the residual signal generator is adapted to generate the plurality of residual signals based on the plurality of original audio object signals and based on the plurality of estimated audio object signals, such that each of the plurality of residual signals indicates a difference between one of the plurality of original audio object signals and one of the plurality of estimated audio object signals.
In an embodiment, the encoder may be an SAOC encoder.
Moreover, a system is provided. The system comprises an encoder according to one of the above-described embodiments for encoding a plurality of original audio object signals by generating three or more downmix signals, by generating parametric side information and by generating a plurality of residual signals. Furthermore, the system comprises a decoder according to one of the above-described embodiments, wherein the decoder is configured to generate a plurality of audio output channels based on the three or more downmix signals being generated by the encoder, based on the parametric side information being generated by the encoder and based on the plurality of residual signals being generated by the encoder.
Furthermore, an encoded audio signal is provided. The encoded audio signal comprises three or more downmix signals, parametric side information and a plurality of residual signals. The three or more downmix signals are a downmix of a plurality of original audio object signals. The parametric side information comprises parameters indicating side information on the plurality of original audio object signals. Each of the plurality of residual signals is a difference signal indicating a difference between one of the plurality of original audio signals and one of a plurality of estimated audio object signals.
Moreover, a method is provided. The method comprises;
Furthermore, another method is provided. Said method comprises:
Moreover, a computer program for implementing one of the above-described methods when being executed on a computer or signal processor is provided.
Embodiments of the present invention will be detailed subsequently referring to the appended drawings, in which:
The residual signal generator 200 comprises a parametric decoding unit 230 for generating a plurality of estimated audio object signals (Estimated Audio Object Signal #1, . . . Estimated Audio Object Signal #M) by upmixing three or more downmix signals (Downmix Signal #1, Downmix Signal #2, Downmix Signal #3, . . . , Downmix Signal #N). The three or more downmix signals (Downmix Signal #1, Downmix Signal #2, Downmix Signal #3, . . . , Downmix Signal #N) encode a plurality of original audio object signals (Original Audio Object Signal #1, . . . , Original Audio Object Signal #M). The parametric decoding unit 230 is configured to upmix the three or more downmix signals (Downmix Signal #1, Downmix Signal #2, Downmix Signal #3, . . . , Downmix Signal #N) depending on parametric side information indicating information on the plurality of original audio object signals (Original Audio Object Signal #1, . . . , Original Audio Object Signal #M). Moreover, the residual signal generator 200 comprises a residual estimation unit 240 for generating a plurality of residual signals (Residual Signal #1, . . . , Residual Signal #M) based on the plurality of original audio object signals (Original Audio Object Signal #1, . . . , Original Audio Object Signal #M) and based on the plurality of estimated audio object signals (Estimated Audio Object Signal #1, . . . Estimated Audio Object Signal #M), such that each of the plurality of residual signals (Residual Signal #1, . . . , Residual Signal #M) is a difference signal indicating a difference between one of the plurality of original audio object signals (Original Audio Object Signal #1, . . . , Original Audio Object Signal #M) and one of the plurality of estimated audio object signals (Estimated Audio Object Signal #1, . . . Estimated Audio Object Signal #M).
The encoder according to the above-described embodiment overcomes the SAOC restrictions (see [SAOC]) of the state of the art.
Present SAOC systems conduct downmixing by employing one or more two-to-one-boxes or one or more three-to-to boxes. Inter alia, because of these underlying restrictions, present SAOC systems can downmix audio object signals to at most two downmix channels/two downmix signals.
Concepts for residual signal generators and for encoders are provided, which allow to overcome the restrictions of SAOC so that Audio Object Coding is now advantageous for transmission systems which employ more than two transmission channels.
In an embodiment, the residual estimation unit 240 is adapted to generate at least five residual signals based on at least five original audio object signals of the plurality of original audio object signals and based on at least five estimated audio object signals of the plurality of estimated audio object signals.
Moreover, the encoder comprises a downmix generator 210 for providing the three or more downmix signals (Downmix Signal #1, Downmix Signal #2, Downmix Signal #3, . . . , Downmix Signal #N) indicating a downmix of the plurality of original audio object signals (Original Audio Object Signal #1, . . . , Original Audio Object Signal #M, further Original Audio Object Signal(s)).
Regarding the Original Audio Object Signal #1, . . . , Original Audio Object Signal #M, the residual estimation unit 240 generates a residual signal (Residual Signal #1, . . . , Residual Signal #M). Thus, Original Audio Object Signal #1, . . . , Original Audio Object Signal #M refer to Enhanced Audio Objects (EAOs).
However, as can be seen in
The encoder of
In an embodiment, the number of original audio object signals may be equal to the number of residual signals, e.g., when all original audio object signals refer to EAOs.
In other embodiments, however, the number of residual signals may differ from the number of original audio object signals and/or may differ from the number of estimated audio object signals, e.g., when original audio objects signals refer to Non-EAOs.
In some embodiments, the encoder is a SAOC encoder.
The decoder comprises a parametric decoding unit 110 for generating a plurality of first estimated audio object signals (1st Estimated Audio Object Signal #1, . . . 1st Estimated Audio Object Signal #M) by upmixing three or more downmix signals (Downmix Signal #1, Downmix Signal #2, Downmix Signal #3, . . . , Downmix Signal #N), wherein the three or more downmix signals (Downmix Signal #1, Downmix Signal #2, Downmix Signal #3, . . . , Downmix Signal #N) encode a plurality of original audio object signals, wherein the parametric decoding unit 110 is configured to upmix the three or more downmix signals (Downmix Signal #1, Downmix Signal #2, Downmix Signal #3, . . . , Downmix Signal #N) depending on parametric side information indicating information on the plurality of original audio object signals.
Moreover, the decoder comprises a residual processing unit 120 for generating a plurality of second estimated audio object signals (2nd Estimated Audio Object Signal #1, . . . 2nd Estimated Audio Object Signal #M) by modifying one or more of the first estimated audio object signals (1st Estimated Audio Object Signal #1, . . . 1st Estimated Audio Object Signal #M), wherein the residual processing unit 120 is configured to modify said one or more of the first estimated audio object signals (1st Estimated Audio Object Signal #1, . . . 1st Estimated Audio Object Signal #M) depending on one or more residual signals (Residual Signal #1, . . . , Residual Signal #M).
The decoder according to the above-described embodiment overcomes the SAOC restrictions (see [SAOC]) of the state of the art.
Furthermore, present SAOC systems conduct upmixing by employing one or more one-to-two-boxes (OTT boxes) or one or more two-to-three-boxes (TTT boxes). Inter alia, because of these restrictions, audio object signals encoded with more than two downmix signals/downmix channels cannot be upmixed by state-of-the-art SAOC decoders.
Concepts for decoders are provided, which allow to overcome the restrictions of SAOC so that Audio Object Coding is now advantageous for transmission systems which employ more than two transmission channels.
According to an embodiment, the residual processing unit 120 is configured to modify said one or more of the first estimated audio object signals depending on at least three residual signals. The decoder is adapted to generate the at least three audio output channels based on the plurality of second estimated audio object signals.
In another embodiment, each of the one or more residual signals indicates a difference between one of the plurality of original audio object signals and one of the one or more first estimated audio object signals.
According to an embodiment, the residual processing unit 120 is adapted to generate the plurality of second estimated audio object signals by modifying five or more of the first estimated audio object signals. The residual processing unit 120 is adapted to modify said five or more of the first estimated audio object signals depending on five or more residual signals.
In another embodiment, the decoder is configured to generate seven or more audio output channels based on the plurality of second estimated audio object signals.
According to a further embodiment, the decoder is adapted to not determine Channel Prediction Coefficients to determine the plurality of second estimated audio object signals.
In a further embodiment, the decoder is an SAOC decoder.
In the following, a concept overview according to an embodiment is provided.
At the encoder side, a parametric side information estimator (“PSI Generation unit”) 220 computes the PSI for estimating the object signals at the decoder exploiting source and downmix related characteristics. An RSI generation unit 245 computes for each object signal to be enhanced residual information by analyzing the differences between the estimated and original object signals. The RSI generation unit 245 may, for example, comprise a parametric decoding unit 230 and a residual estimation unit 240.
At the decoder side, a parametric decoding unit (“PSI Decoding” unit) 110 estimates the object signals from the downmix signals with the given PSI. In a second step, a residual processing unit (“RSI Decoding” unit) 120 uses the RSI to improve the quality of the estimated object signals to be enhanced. All object signals (enhanced and non-enhanced audio objects) may, for example, be passed to a rendering unit 130 to generate the target output scene.
It should be noted that it is not necessitated to take all downmix signals into consideration. Downmix signals can be omitted from the computation if their contribution in estimating or/and estimating and enhancing the object signals can be neglected.
For the ease of comprehension, the processing steps in
In the following, a joint residual encoding/decoding concept is provided.
The parametric decoding unit (“PSI Decoding” unit) 230 yields an estimate of the audio object signals (estimated audio object signals sest,PSI,{1, . . . ,M} given the estimated PSI and the downmix signal(s) as input. The estimated audio object signals sest,PSI{1, . . . ,M} are compared with the original unaltered source signals s1, . . . , sM in the residual estimation unit (“RSI Estimation” unit) 240. The residual estimation unit 240 provides a residual/error signal term sres,RSI,{1, . . . , M} for each audio object to be enhanced.
The (first) estimated audio object signals sest,PSI,{1, . . . , M} from the parametric decoding unit (“PSI Decoding” unit) 110 are fed together with the residual information (“residual side information”) into the residual processing unit (“RSI Decoding”) 120. The residual processing unit 120 computes from the residual (side) information and the estimated audio object signals sest,RSI,{1, . . . , M} the second estimated audio object signals sest,RSI,{1, . . . , M}, e.g., the enhanced and non-enhanced audio object signals, and yields the second estimated audio object signals sest,RSI,{1, . . . , M}, e.g., the enhanced and non-enhanced audio object signals, as output of the residual processing unit 120.
Additionally, a re-estimation of the non-EAOs can be carried out (not illustrated in
In
The parametric decoding unit 230 is configured to determine one or more audio object signals of the first estimated audio object signals based on the three or more modified downmix signals.
Then, the residual estimation unit 240 may, e.g., determine one or more residual signals based on said one or more audio object signals of the first estimated audio object signals.
In an embodiment, the downmix modification unit 250 may, for example, be configured to modify the three or more original downmix signals to obtain the three or more modified downmix signals, by removing one or more of the plurality of original audio object signals from the three or more original downmix signals.
In another embodiment, the downmix modification unit 250 may, for example, be configured to modify the three or more original downmix signals to obtain the three or more modified downmix signals by generating one or more modified audio object signals based on one or more of the estimated audio object signals and based on one or more of the residual signals, and by removing the one or more modified audio object signals from the three or more original downmix signals. E.g. each of the one or more modified audio object signals may be generated by the downmix modification unit by modifying one of the estimated audio object signals, wherein the downmix modification unit may be adapted to modify said estimated audio object signal depending on one of the one or more residual signals.
In both of the embodiments described above, the downmix modification unit may, for example, be adapted to apply the formula
{tilde over (X)}=X−DZeao*Seao,
wherein X is the downmix to be modified,
wherein D indicates the related downmixing information,
wherein Seao comprises the original audio object signals to be removed or the modified audio object signals to be removed,
wherein Zeao* indicates the locations of the signals to be removed, and
wherein {tilde over (X)} is the modified downmix signal.
E.g., a location (position) of an audio object signal corresponds to the location (position) of its audio object in the list of all objects.
In the embodiment of
The residual processing unit 120 determines one or more audio object signals of the plurality of second estimated audio object signals.
The downmix modification unit 140 is adapted to remove the determined one or more second estimated audio object signals from the three or more downmix signals to obtain three or more modified downmix signals.
The parametric decoding unit 110 is configured to determine one or more audio object signals of the first estimated audio object signals based on the three or more modified downmix signals.
The residual processing unit 120 may then e.g., determine one or more further second estimated audio object signals based on the determined one or more audio object signals of the first estimated audio object signals.
In a particular embodiment, the downmix modification unit 130 may, for example, be adapted to apply the formula:
{tilde over (X)}nonEAO=X−DZeao*Seao.
to remove the one or more audio object signals of the plurality of second estimated audio object signals determined by the residual processing unit 120 from the three or more downmix signals to obtain three or more modified downmix signals, wherein
X indicates the three or more downmix signals before being modified
{tilde over (X)}nonEAO indicates the three or more modified downmix signals
D indicates a downmix matrix
Zeao indicates a mapping sub-matrix denoting the positions (locations) of EAOs
(For more details on particular variants of this embodiment, see the description below).
In the following, a cascaded residual encoding/decoding concept is presented.
(It should be noted, that in the alternative embodiment, where in each iteration step, an estimated audio object signal is removed from the signal mixture, the downmix modification subunits 2501, 2502 do not need to receive the original audio object signals sM.
On the contrary, in the embodiment, where in each iteration step, an original audio object signal is removed from the signal mixture, the downmix modification subunits 2501, 2502 do not need to receive the estimated audio object signals.)
In more detail,
Each of the plurality of RSI generation subunits 2451, 2452 comprises a parametric decoding subunit 2301. The plurality of parametric decoding subunits 2301 together form a parametric decoding unit. The parametric decoding subunits 2301 generate the first estimated audio object signals sest,PSI,{1, . . . ,M}.
Each of the plurality of RSI generation subunits 2451, 2452 comprises a residual estimation subunit 2401. The plurality of residual estimation subunits 2401 together form a residual estimation unit. The residual estimation subunits 2401 generate the second estimated audio object signals sest,RSI,M, sest,RSI,M-1.
Moreover,
In each step, one of the object signals to be enhanced is estimated by a parametric decoding subunit (“PSI Decoding) 1101 (to obtain one of the first estimated audio object signals sest,PSI,M), and the one of the first estimated audio object signals sest,PSI,M is then processed together with the corresponding residual signal sres,RSI,M by a residual processing subunit (“RSI Processing”) 1201, to yield the enhanced version of the object signal (one of the second estimated audio object signals) sest,RSI,M. The enhanced object signal sest,RSI,M is cancelled from the downmix signal by a downmix modification subunit (“Downmix modification”) 1401 before the modified downmix signals are fed into the next residual decoding subunit (“Residual Decoding”) 1252.
Equal to the joint residual encoding/decoding concept, the non-EAOs can additionally be re-estimated.
In more detail,
Each of the plurality of residual decoding subunits 1251, 1252 comprises a parametric decoding subunit 1101. The plurality of parametric decoding subunits 1101 together form a parametric decoding unit. The parametric decoding subunits 1101 generate the first estimated audio object signals sest,PSI,{1, . . . ,M}.
Each of the plurality of residual decoding subunits 1251, 1252 comprises a residual processing subunit 1201. The plurality of residual processing subunits 1201 together form a residual processing unit. The residual processing subunits 1201 generate the second estimated audio object signals sest,RSI,M, sest,RSI,M-1.
Moreover,
In
The residual signal generator 200 is adapted to conduct two or more iteration steps:
For each iteration step, the parametric decoding unit 230 is adapted to determine exactly one audio object signal of the plurality of estimated audio object signals.
Moreover, for said iteration step, the residual estimation unit 240 is adapted to determine exactly one residual signal of the plurality of residual signals by modifying said audio object signal of the plurality of estimated audio object signals.
Furthermore, for said iteration step, the downmix modification unit 250 is adapted to modify the three or more downmix signals.
In the next iteration step following said iteration step, the parametric decoding unit 230 is adapted to determine exactly one audio object signal of the plurality of estimated audio object signals based on the three or more downmix signals which have been modified.
The decoder of
For each iteration step, the parametric decoding unit 110 is adapted to determine exactly one audio object signal of the plurality of first estimated audio object signals.
Moreover, for said iteration step, the residual processing unit 120 is adapted to determine exactly one audio object signal of the plurality of second estimated audio object signals by modifying said audio object signal of the plurality of first estimated audio object signals.
Furthermore, for said iteration step, the downmix modification unit 140 is adapted to remove said audio object signal of the plurality of second estimated audio object signals from the three or more downmix signals to modify the three or more downmix signals.
In the next iteration step following said iteration step, the parametric decoding unit 110 is adapted to determine exactly one audio object signal of the plurality of first estimated audio object signals based on the three or more downmix signals which have been modified.
In the following, a mathematical derivation on the example of the joint residual encoding/decoding concept is described:
The following notation is used in the following:
Dimensions:
NObjects—number of audio object signals
NDmxCH—number of downmix signals
NUpmixCh—number of upmix channels
NSamples—number of processed data
NEAO—number of EAOs
Z*—the star-operator (*) denotes the conjugate transpose of the given matrix
S—original audio object signal provided to encoder (size NObjects×NSamples)
D—downmix matrix (size NDmxCh×NObjects)
R—rendering matrix (size NUpmixCh×NObjects)
X—downmix audio signal X=DS (size NDmxCh×NSamples)
Y—ideal audio output signal Y=RS (size NUpmixCh×NSamples)
Sest—parametrically reconstructed object signal approximating Sest□S defined as Sest=GX (size NObjects×NSamples)
Ŝest—decoder output comprising all non-EAO (parametrically estimated) and EAO (parametrically plus residual) signal estimates size NObjects×NSamples
Ŷest—upmix audio output signal approximating Ŷest □Y defined as Ŷest=RŜest (size NUPmixCh×NSamples)
ZnonEao; Zeao—mapping sub-matrix denoting the locations of non-EAOs and EAOs in the list of all objects. Note ZnonEaoZeao*=[0](size (NObjects−NEAO)×NObjects; NEAO×NObjects). The non-EAO ZnonEao and corresponding Zeao mapping matrices are defined as
For example, for NObjects=5 and the objects number 2 and 4 are EAOs, these matrices are
DnonEao—downmix sub-matrix corresponding to non-EAOs, defined as DnonEao=DZnonEao* (size NDmxCh×(NObjects−NEAO))
Deao—downmix sub-matrix corresponding to EAOs, defined as Deao=DZeao* (size NDmxCh×NEAO)
G—parametric source estimation matrix (size NObjects×NDmxCh)
E—object covariance matrix (size NObjects×NObjects)
EnonEao—covariance sub-matrix corresponding to non-EAOs, defined as EnonEao=ZnonEaoEZnonEao*(size (NObjects−NEAO)×(NObjects−NEAO))
Seao— EAO signal comprising the reconstructions of the EAOs (size NEAO×NSamples)
SnonEao—non-EAO signal comprising the reconstructions of the non-EAOs (size (NObjects−NEAO)×NSamples)
Sres—residual signals for EAOs (size NEAO×NSamples)
{circumflex over (X)}nonEao-modified downmix signal comprising only non-EAO signals; computed as the difference between SAOC downmix and downmix of reconstructed EAOs (size NDmxCh×NSamples)
All introduced matrices are (in general) time and frequency variant.
Now, a general method with non-EAO signal re-estimation at the decoder side is considered:
The general method can be described as a two-step approach with first extracting all EAO signals from the corresponding downmix signal, and then reconstructing all non-EAO signals considering the EAOs. The object signals are recovered from the downmix signal (X) using the PSI (E, D) and incorporated residual signal (Sres).
It is considered that the final rendered output signal Ŷest is given as:
Yest=RŜest.
The decoder output object signal Ŝest can be represented as following sum:
Ŝest=Z*eaoSeao+ZnonEao*SnonEao.
The EAO signal Seao is computed from the downmix X with the help of the parametric EAO reconstruction matrix Geao and the corresponding EAO residuals Sres as follows:
Seao=GeaoX+Sres.
The non EAO signal SnonEao is computed from the modified downmix {tilde over (X)}nonEao with the help of parametric non-EAO reconstruction matrix {tilde over (G)}nonEao as follows:
SnonEao={tilde over (G)}nonEao{tilde over (X)}nonEao.
The modified downmix {tilde over (X)}nonEao signal is determined as the difference between the downmix X and the corresponding downmix of the reconstructed EAOs as follows, thus cancelling the EAOs from the downmix signal X:
{tilde over (X)}nonEAO=X−DZeao*Seao.
Here the parametric object reconstruction matrices for EAOs Geao and non-EAOs {tilde over (G)}nonEao are determined using the PSI (E, D) as follows:
Geao=ZeaoED*J, J≈(DED*)−1,
{tilde over (G)}nonEao=EnonEaoDnonEao*JnonEaoJnonEao≈(DnonEaoEnonEaoDnonEao*)−1.
In the following, a simplified method “A” without non-EAO signal re-estimation at the Decoder side is described:
If only EAOs in the signal mixture are manipulated, the target scene can be interpreted as a linear combination of the downmix signals and the EAO signals. The additional re-estimation of the non-EAO signals can therefore be omitted. The general method with non-EAO signal re-estimation can be simplified to a single-step procedure:
Sest=Sest+Xdif.
The signal Xdif=f(Sres,D) comprises the transmitted residual signals of the EAOs and residual compensation terms so that the following definition holds:
DŜest=X.
This condition is sufficient to render any acoustic scene, which is restricted to manipulate the EAOs only.
With DŜest=D (Sest+Xdif)=X and DSest=X, the following constraint for the term Xdif has to be fulfilled:
DXdif=0.
The term Xdif consists of components which are determined by the encoder (and transmitted or stored) Sres and components XnonEao to be determined using this equation.
Using the definitions of the downmix matrix (D=DeaoZeao+DnonEaoZnonEao) and the compensation term (Xdif=Zeao*Sres+Z*nonEao XnonEao) one can derive the following equation:
DXdif=DeaoZeaoZeao*Sres+DnonEaoZnonEaoZnonEao*XnonEao+DeaoZeaoZnonEao*XnonEao+DnonEaoZnonEaoZeao*Sres=0
With ZeaoZeao*=I, ZnonEaoZnonEao*=I and ZnonEaoZeao*=[0], ZeaoZnonEao*=[0], the equation can be simplified to:
DeaoSres+DnonEaoXnonEao=0.
Solving the linear equation for XnonEao gives:
XnonEao=−(DnonEao*DnonEao)−1DnonEao*DeaoSres.
After solving this system of linear equations the desired target scene can be calculated as the following sum of parametric prediction term and residual enhancement term as:
Ŷest=RŜest, Ŝest=Sest+Xdif, Xdif=Zeao*Sres−ZnonEao*(DnonEao*DnonEao)−1DnonEao*DeaoSres.
In the following, a simplified method “B” without non-EAO signal re-estimation at the decoder side is provided:
Consider the compensation term Xdif as above (Ŝest=Sest+Xdif) for the parametric signal prediction Sest and represent it as the following function Xdif=HenhZeao*Sres of the residual signals Sres leading into:
Ŝest=Sest+HenhZ*eaoSres
An alternative formulation is comprising the three following parts including appropriate linear combination of downmix signals (HdmxX), enhanced objects (HenhZeao*ZeaoSenh), and non-enhanced objects (HestSest) such that it follows:
Ŝest=HdmxX+HenhZeao*ZeaoSenh+HestSest.
The matrices are of the sizes Hdmx:NObjects×NDmxCh, Henh:NObjects×NObjects, Senh:NObjects×NSamples, and Hest:NObjects×NObjects.
Assuming DSest=X and the definition of Senh=Sest+Zeao*Sres this can be written as:
Ŝest=(HdmxD+HenhZeao*Zeao+Hest)Sest+HenhZeao*Sres.
Comparing this, and the earlier definition of the reconstructed signals Ŝest=Sest+HenhZeao*ZeaoSres it follows that:
HdmxD+HenhZeao*Zeao+Hest=I.
One can derive the term Hest as:
Hest=I−HestDest.
The error in the final reconstruction will be minimized, when the contribution of the non-enhanced signals is minimized Thus, targeting for Hest □0 allows to solve the term Hest from a system of linear equations:
Hest=Dest*(DestDest*)−1,
where extended downmix matrix Dest and upmix matrix Hest are defined as concatenated matrices:
After solving this system of linear equations the desired correction term Xdif can be obtained as:
Leading into the final outputs of Ŷest=RŜest, Ŝest=Sest+Xdif.
In the following, a simplified method “C” is considered:
If only the EAOs are manipulated in an arbitrary manner, any target scene can be generated by a linear combination of the downmix signals and the EAOs. Note that instead of the downmix, the downmix with the EAOs cancelled can also be used. The target scene can be perfectly generated if the residual processing perfectly restores the EAOs. Rendering of any target scene can be done using finding the two component rendering matrices RD and Reao for the downmix and the EAO reconstructions. The matrices have the sizes RD: NUpmixCh×NDmxCh and Reao: NUpmixCh×NEAO. The target rendering matrix R can be represented as a product of the combined rendering matrices and the downmix matrix as
From this, Rext can be solved with
Rext=RDest*(DestDest*)−1
and the sub-matrices RD and Reao can be extracted from the solution with
The target scene can now be computed as:
Ŷest=RDX+ReaoSeao,
where Seao comprises the full reconstructions of the EAOs and is defined (as earlier) Seao=GeaoX+Sres.
A similar equation can be formulated for rendering the target using the downmix with the EAOs cancelled from the mix by subtracting DeaoSeao from the downmix.
In the following, another mathematical derivation and further details on the joint residual encoding/decoding concept are described, and an unification between the general method and the simplification “A” is provided.
From now on in the description, the following notation applies. If for some elements, the following notation is inconsistent with the notation provided above, from now on in the description, only the following notation applies for these elements.
S is the object signals of size NObjects×NSamples
E=SS* is the object covariance matrix of size NObjects×NObjects
D is the downmixing matrix of size NDmxCh×NObjects
X=DS is the downmix signal of size NDmxCh×NSamples
G=ED*J is the up-mixing matrix of size NObjects×NDmxCh
Mren is the rendering matrix of size NUpmixCh×NObjects
Xres is the residual signals of size NEAO×NSamples
Reao is a matrix of size NEAO×NObjects denoting the positions (locations) of EAOs defined as
RnonEao is a matrix of size (NObjects−NEAO)×NObjects denoting the positions (locations) of non-EAOs defined as
The sub-matrices of some of the above corresponding to non-EAOs can be specified with the help of the selection matrices RnonEao as:
In the following, another detailed mathematical description on the general method (with non-EAO signal re-estimation at the decoder) is provided:
The object signals are recovered from the downmix using the side information and incorporated residual signals. The output from the decoder {circumflex over (X)} is produced as follows
{circumflex over (X)}=MresReao*Xeao+MresRnonEao*XnonEao.
The EAO term Xeao of size NEAO with the EAOs is computed as follows
Xeao=ReaoED*JX+Xres,
where the residual signal term Xres of size NEAO comprises the residual signals for EAOs. The non-EAO term XnonEao of size NObjects−NEAO comprising the non-EAOs is computed as
XnonEao=EnonEaoDnonEao*JnonEao{tilde over (X)}nonEao, JnonEao≈(DnonEaoEnonEaoDnonEao*)−1
where the modified downmix signal {tilde over (X)}nonEao comprising only non-EAO signals is computed as the difference between SAOC downmix and downmix of the reconstructed EAOs
{tilde over (X)}nonEao=X−DReao*Xeao.
The covariance sub-matrix EnonEAO of size (NObjects−NEAO)×(NObjects−NEAO) corresponding to non-EAOs is computed as
EnonEao=RnonEaoERnonEao*.
The downmix sub-matrix DnonEao of size NDmxCh×(NObjects−NEAO) corresponding to non-EAOs is computed as
DnonEao=DRnonEao*.
In the following, another detailed mathematical description on the simplified method “A” (without non-EAO signal re-estimation at the decoder) is provided:
The object signals are recovered from the downmix using the side information and incorporated residual signals. The final output from the decoder {circumflex over (X)} is produced as follows
{circumflex over (X)}=Mren(ED*JX+Xdif).
The term Xdif of size NObjects incorporates NEAO residual signals Xres for EAOs and the predicted term XnonEao for non-EAOs as follows
Xdif=Reao*Xres+RnonEao*XnonEao.
The predicted term XnonEao is estimated as follows
XnonEao=−(DnonEao*DnonEao)−1DnonEao*DeaoXres
The downmix sub-matrix Deao corresponding to EAOs and DnonEao corresponding to regular objects are defined as
D=DeaoReao+RnonEaoDnonEao.
In the following, a special case of rendering matrix 1 is considered:
Consider the following special case of the downmix-similar rendering matrix MD of the size NDmxCh×NObjects with arbitrary modification of the EAOs and only a uniform scaling (compared to the downmix) of the non-EAOs
MD=MReao*Reao+aDRnonEao*RnonEao.
Now, a detailed mathematical description of the general method is provided:
Now, a detailed mathematical description of the simplified method “A” is provided:
It can be seen that the two results are identical when the assumption of the rendering matrix holds.
Now a special case of rendering matrix 2 is considered:
Including an additional constraint on the structure of the rendering matrix MS of the size NDmxCh×NObjects: all the non-EAOs are modified only by a common scaling factor a compared to the downmix, and also all the EAOs are modified only by a common scaling factor b compared to the downmix.
MD=bDReao*Reao+aDRnonEao*RnonEao=D(bReao*Reao+aRnonEao*RnonEao).
Continuing from the earlier results, the output of the system will be
Although some aspects have been described in the context of an apparatus, it is clear that these aspects also represent a description of the corresponding method, where a block or device corresponds to a method step or a feature of a method step. Analogously, aspects described in the context of a method step also represent a description of a corresponding block or item or feature of a corresponding apparatus.
The inventive decomposed signal can be stored on a digital storage medium or can be transmitted on a transmission medium such as a wireless transmission medium or a wired transmission medium such as the Internet.
Depending on certain implementation requirements, embodiments of the invention can be implemented in hardware or in software. The implementation can be performed using a digital storage medium, for example a floppy disk, a DVD, a CD, a ROM, a PROM, an EPROM, an EEPROM or a FLASH memory, having electronically readable control signals stored thereon, which cooperate (or are capable of cooperating) with a programmable computer system such that the respective method is performed.
Some embodiments according to the invention comprise a non-transitory data carrier having electronically readable control signals, which are capable of cooperating with a programmable computer system, such that one of the methods described herein is performed.
Generally, embodiments of the present invention can be implemented as a computer program product with a program code, the program code being operative for performing one of the methods when the computer program product runs on a computer. The program code may for example be stored on a machine readable carrier.
Other embodiments comprise the computer program for performing one of the methods described herein, stored on a machine readable carrier.
In other words, an embodiment of the inventive method is, therefore, a computer program having a program code for performing one of the methods described herein, when the computer program runs on a computer.
A further embodiment of the inventive methods is, therefore, a data carrier (or a digital storage medium, or a computer-readable medium) comprising, recorded thereon, the computer program for performing one of the methods described herein.
A further embodiment of the inventive method is, therefore, a data stream or a sequence of signals representing the computer program for performing one of the methods described herein. The data stream or the sequence of signals may for example be configured to be transferred via a data communication connection, for example via the Internet.
A further embodiment comprises a processing means, for example a computer, or a programmable logic device, configured to or adapted to perform one of the methods described herein.
A further embodiment comprises a computer having installed thereon the computer program for performing one of the methods described herein.
In some embodiments, a programmable logic device (for example a field programmable gate array) may be used to perform some or all of the functionalities of the methods described herein. In some embodiments, a field programmable gate array may cooperate with a microprocessor in order to perform one of the methods described herein. Generally, the methods are performed by any hardware apparatus.
While this invention has been described in terms of several advantageous embodiments, there are alterations, permutations, and equivalents which fall within the scope of this invention. It should also be noted that there are many alternative ways of implementing the methods and compositions of the present invention. It is therefore intended that the following appended claims be interpreted as including all such alterations, permutations, and equivalents as fall within the true spirit and scope of the present invention.
This application is a continuation of copending International Application No. PCT/EP2013/057932, filed Apr. 16, 2013, which claims priority from U.S. Provisional Application No. 61/681,730, filed Aug. 10, 2012, each of which is incorporated herein in its entirety by this reference thereto.
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Number | Date | Country | |
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20150162012 A1 | Jun 2015 | US |
Number | Date | Country | |
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61681730 | Aug 2012 | US |
Number | Date | Country | |
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Parent | PCT/EP2013/057932 | Apr 2013 | US |
Child | 14617706 | US |