quadrature mirror filter - translation to γερμανικά
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quadrature mirror filter - translation to γερμανικά

DIGITAL SIGNAL FILTER
Quadrature Mirror Filter

quadrature mirror filter         
n. (Computer) QMF-Filterbank, Digitalfilter der Eingangssignale in Subbander unterteilt
mirror site         
REPLICA OF A WEBSITE WITH A DIFFERENT URL
Mirror site (2004); Web mirror; Mirror sites; Website mirror; Website mirroring; Mirror website; Mirror (website); Partial mirror
Spiegelseite, eine Seite im Internet die die Kopie einer anderen Seite ist und die zur Minderung des Andrangs zur Originalseite dient
air filter         
DEVICE COMPOSED OF FIBROUS MATERIALS WHICH REMOVES SOLID PARTICULATES FROM THE AIR
Filter (air); Air cleaner; Air filtration; Air filters; Universal air filter; Cabin air filter; Dust filter; Air Filters
Luftfilter

Ορισμός

mirror site
<networking> An archive site or website which keeps a copy of some or all files at another site so as to make them more quickly available and to reduce the load on the source site. It is generally best to use the mirror that is physically closest to you as this will usually give the fastest download. Such mirroring is usually done for specific whole directories or files on a specific remote server as opposed to a cache or proxy server which keeps copies of everything that is requested via it. For example, src.doc.ic.ac.uk is the main UK mirror for the GNU archive at gnu.org. (2006-10-16)

Βικιπαίδεια

Quadrature mirror filter

In digital signal processing, a quadrature mirror filter is a filter whose magnitude response is the mirror image around π / 2 {\displaystyle \pi /2} of that of another filter. Together these filters, first introduced by Croisier et al., are known as the quadrature mirror filter pair.

A filter H 1 ( z ) {\displaystyle H_{1}(z)} is the quadrature mirror filter of H 0 ( z ) {\displaystyle H_{0}(z)} if H 1 ( z ) = H 0 ( z ) {\displaystyle H_{1}(z)=H_{0}(-z)} .

The filter responses are symmetric about Ω = π / 2 {\displaystyle \Omega =\pi /2} :

| H 1 ( e j Ω ) | = | H 0 ( e j ( π Ω ) ) | . {\displaystyle {\big |}H_{1}{\big (}e^{j\Omega }{\big )}{\big |}={\big |}H_{0}{\big (}e^{j(\pi -\Omega )}{\big )}{\big |}.}

In audio/voice codecs, a quadrature mirror filter pair is often used to implement a filter bank that splits an input signal into two bands. The resulting high-pass and low-pass signals are often reduced by a factor of 2, giving a critically sampled two-channel representation of the original signal. The analysis filters are often related by the following formula in addition to quadrate mirror property:

| H 0 ( e j Ω ) | 2 + | H 1 ( e j Ω ) | 2 = 1 , {\displaystyle {\big |}H_{0}{\big (}e^{j\Omega }{\big )}{\big |}^{2}+{\big |}H_{1}{\big (}e^{j\Omega }{\big )}{\big |}^{2}=1,}

where Ω {\displaystyle \Omega } is the frequency, and the sampling rate is normalized to 2 π {\displaystyle 2\pi } . This is known as power complementary property. In other words, the power sum of the high-pass and low-pass filters is equal to 1.

Orthogonal wavelets – the Haar wavelets and related Daubechies wavelets, Coiflets, and some developed by Mallat, are generated by scaling functions which, with the wavelet, satisfy a quadrature mirror filter relationship.