ITU-T P 330-2003 Speech processing devices for acoustic enhancement SERIES P TELEPHONE TRANSMISSION QUALITY TELEPHONE INSTALLATIONS LOCAL LINE NETWORKS Subscribers- lines and sets《.pdf
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1、COVERING NOTE GENERAL SECRETARIAT INTERNATIONAL TELECOMMUNICATION UNION Geneva, 30 September 2003 ITU -TELECOMMUNICATION STANDARDIZATION SECTOR Subject: Amendment 1 (09/2003) to ITU-T Recommendation P.330 (03/2003), Speech processing devices for acoustic enhancement In clause 4.5.1, Acoustic echo pa
2、th All the text at the end of the paragraph belongs to the NOTE. It should be indented and amended as follows: NOTE - It is recommended to avoid extremely long rooms (Length Width, Height) and rooms with extremely low ceilings (Height Width, Height) and rooms with extremely low ceilings (Height Leng
3、th, Width), and preferably also rooms with all the side dimensions nearly identical. Large, flat, parallel room-limiting surfaces, and surface areas that provide broadband sound reflection, particularly wall surfaces at an average room height (roughly 0.8 m to 1.8 m above the floor) should be avoide
4、d, since they can cause flutter echoes and flutter-echo-like disturbances (echoing, roughness), if the test setup is in an unfavourable position. Measuring the local frequency-dependent distribution of sound pressure levels within a selected room in the steady state can help to determine the optimum
5、 position of the test setup. As a general suggestion, the minimum distance between the test setup and room limiting surfaces should be 1 m, regardless of the acoustic properties of these surfaces. This can prevent disturbances due to initial reflections and a rise in sound pressure level that can oc
6、cur locally at low frequencies. The same recommendation applies to geometrically large furniture surfaces that reflect sound. 4.5.2 Parameters and recommended limits - - 4.5.2.1 The weighted loss between the Ri, and Saut network interfaces when the AEC is in normal operation, and when there is no si
7、gnal coming from the local user1. Before each test the terminal is switched on. Weighted terminal coupling loss - single-talk (TCLwst) The weighting is made according to the rule specified in ITU-T Rec. G.122 (computation of talker echo loudness rating). Care must be taken to avoid possible masking
8、of singing effects by the weighting (under study). ITU-T Rec. P.330 (03/2003) 5 The recommended values for each type of hands-free terminal can be found in the relevant ITU-T Recommendations (e.g., ITU-T Rec. P.341 for wideband hands-free terminal and ITU-T Rec. P.342 for digital hands-free terminal
9、). 4.5.2.2 Weighted terminal coupling loss - double-talk (TCLwdt) The weighted loss between the Ri, and Sout network interfaces when the AEC is in normal operation, and where the local user and the far-end user are active simultaneously1. The recommended values for each type of hands-free terminal c
10、an be found in clause 8P.340. 4.5.2.3 The received signal attenuation (at the point) which is inserted by the AEC during double-talk events. The frequency response on the receive side during double-talk should ideally be the same as during single-talk conditions. In practice, however, it may not be
11、possible to implement echo cancellation which provides sufficient echo loss during double-talk, without modifjdng the frequency response. 4.5.2.4 The sent signal attenuation (at the Sout point) which is inserted by the AEC during double-talk events. The frequency response on the send side during dou
12、ble-talk should ideally be the same as during single-talk conditions. In practice, however, it may not be possible to implement echo cancellation which provides sufficient echo loss during double-talk, without modifjdng the frequency response. 4.5.2.5 The total non-linear signal distortion at the po
13、int which can be produced by the AEC during double-talk events. For all the applications, the supplementary distortion at Rout in comparison with single-talk conditions should be low. Received speech attenuation during double-talk (Ardt) Sent speech attenuation during double-talk (Asdt) Received spe
14、ech distortion during double-talk (Drdt) 4.5.2.6 The total non-linear signal distortion at the Sout point which can be produced by the AEC during double-talk events. For all the applications, the supplementary distortion at Sout in comparison with single-talk conditions should be low. Sent speech di
15、stortion during double-talk (Dsdt) 4.5.2.7 The time interval between the onset of the received signal (similarly the transmitted signal) and the instant when the attenuation on the receive path (similarly on the send path) reaches 3 dB. For this purpose, the other side is quiet. 4.5.2.7.1 Receive si
16、de (TRst-r) For all the applications, TRst-r shall be no more than 20 ms. 4.5.2.7.2 Send side (TRst-s) For all the applications, TRst-s shall be no more than 20 ms. 4.5.2.8 The time interval between the onset of the received signal (similarly the sent signal) and the instant when the attenuation on
17、the receive path (similarly on the send path) reaches the value Ardt Build-up time - single-talk (TRst) Build-up time - double-talk (TRdt) 6 ITU-T Rec. P.330 (03/2003) (similarly Asdt). For this purpose, the signal in the opposite direction of transmission is held at a specified level. 4.5.2.8.1 Rec
18、eive side (TRdt-r) TRdt-r should be less than 20 ms, if the attenuation is more than 6 dB. 4.5.2.8.2 Send side (TRdt-s) TRdt-s should be less than 20 ms, if the attenuation is more than 6 dB. 4.5.2.9 Convergence time (Tc) Convergence Time is the time interval between the instant when a specified tes
19、t signal is applied to the Ri, port of the terminal (after all the functions of the AEC have been reset and then enabled), and the instant when the returned echo signal at the Sout port is attenuated by at least a predefined amount. The local user is not active. 4.5.2.10 Hang-over time after double-
20、talk (THdt) The time elapsed between the end of a double-talk event and the instant when the attenuation of the echo recovers a specified value (a signal is received continuously fi-om the distant user). For all the applications, the attenuation of the signal at Sout should be at least 20 dB after T
21、Hdt = 11 second. 4.5.2.11 The echo return loss fi-om Ri, to Sout is measured according to the procedure defined for ERLtst in ITU-T Rec. P.502. Terminal coupling loss temporally weighted - single-talk (TCLtst) 4.5.2.12 Terminal coupling loss temporally weighted echo return loss - double-talk (ERLtdt
22、) The echo return loss fi-om Ri, to Sout is measured according to the procedure described for ERLtdt in ITU-T Rec. P.502. 5 Noise reduction The main purpose of a noise reduction (NR) system in a device is to reduce the annoying and fatiguing effects of the transmitted background noise. The technique
23、s used to reduce background noise may be classified as analogue only, digital only, and combined analogue and digital techniques. 5.1 Analogue components The analogue components of a NR system include the microphone and any analogue circuitry connecting the microphone to the CODEC (analogue-to-digit
24、al converter). There are several techniques used in reducing background noise that only rely on analogue components: a) The proximity of the microphone relative to the talkers mouth is a major factor in determining the SNR. Moving the microphone close to the talkers mouth produces an obvious but sig
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