T-section filter - Übersetzung nach russisch
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T-section filter - Übersetzung nach russisch

Digital biquadratic filter; Second-order section
  • Flow diagram of Biquad filter Direct Form 1
  • Digital Biquad Direct Form 1 Untransformed
  • Flow diagram of Biquad filter Direct Form 1
  • Flow diagram of Biquad filter Direct Form 2
  • Flow diagram of Biquad filter Direct Form 2
  • Flow diagram of Biquad filter Direct Form 2 with Quantizing

T-section filter      

общая лексика

фильтр с Т-образными звеньями

section line         
  • Perfectly square 160-acre quarter sections of farmland cover Central [[Indiana]].
  • Section map of [[Rock Creek Township, Saunders County, Nebraska]] (1907)
SQUARE SUBDIVISION OF A U.S. SURVEY TOWNSHIP
Section (land); Section (U.S. land surveying); Section (United states land surveying); Quarter section; Section line; Section line arterial; Section lines; Section (surveying); Quarter-quarter section

медицина

линия разреза

строительное дело

створ

section line         
  • Perfectly square 160-acre quarter sections of farmland cover Central [[Indiana]].
  • Section map of [[Rock Creek Township, Saunders County, Nebraska]] (1907)
SQUARE SUBDIVISION OF A U.S. SURVEY TOWNSHIP
Section (land); Section (U.S. land surveying); Section (United states land surveying); Quarter section; Section line; Section line arterial; Section lines; Section (surveying); Quarter-quarter section
створ

Definition

т
Т, согласная буква те, твердо, 19-я в азбуке (в церк. 20-я); в церковном счислении: Т триста, триста тысяч, в круге, и в точках, см. А
. ·сокр. т. е., то есть; т. к., так как; и т. д. и так далее; и т. п., и тому подобное; т., том; тысяч.

Wikipedia

Digital biquad filter

In signal processing, a digital biquad filter is a second order recursive linear filter, containing two poles and two zeros. "Biquad" is an abbreviation of "biquadratic", which refers to the fact that in the Z domain, its transfer function is the ratio of two quadratic functions:

  H ( z ) = b 0 + b 1 z 1 + b 2 z 2 a 0 + a 1 z 1 + a 2 z 2 {\displaystyle \ H(z)={\frac {b_{0}+b_{1}z^{-1}+b_{2}z^{-2}}{a_{0}+a_{1}z^{-1}+a_{2}z^{-2}}}}

The coefficients are often normalized such that a0 = 1:

  H ( z ) = b 0 + b 1 z 1 + b 2 z 2 1 + a 1 z 1 + a 2 z 2 {\displaystyle \ H(z)={\frac {b_{0}+b_{1}z^{-1}+b_{2}z^{-2}}{1+a_{1}z^{-1}+a_{2}z^{-2}}}}

High-order infinite impulse response filters can be highly sensitive to quantization of their coefficients, and can easily become unstable. This is much less of a problem with first and second-order filters; therefore, higher-order filters are typically implemented as serially-cascaded biquad sections (and a first-order filter if necessary). The two poles of the biquad filter must be inside the unit circle for it to be stable. In general, this is true for all discrete filters i.e. all poles must be inside the unit circle in the Z-domain for the filter to be stable.

Übersetzung von &#39T-section filter&#39 in Russisch