1.6 kHz low shelf
Lifts or drops everything below f0 by a fixed amount and leaves the top flat. Solved at 8 sample rates, with the poles, the real −3 dB point and the word length it stops working at.
Magnitude response at 48 kHz
Every vertex is 20·log₁₀|H(ejω)| evaluated on the unit circle — not a sketch of the filter's shape. Shelves fix the slope at S = 1, so there is no Q family to draw; the faint traces are the gain sweep.
Gain at f0 (1.6 kHz)
+3.00 dB
exact at every sample rate — the bilinear transform maps this value, not just the frequency
Pole radius at 48 kHz
0.8827288
conjugate pair at ±7.18°, 0.117 from the circle
−3 dB point
1602.8 Hz
1.002× f0 at Q = 0.7071
16-bit fixed point
holds
largest pole 0.8827434 in Q1.14
Coefficients, at every sample rate
The cookbook computes w₀ = 2πf₀/Fs, so the same filter is a different set of numbers at every rate. Rates whose Nyquist limit is at or below 1.6 kHz are absent because the filter does not exist there — equivalently, the f₀/Nyquist column never reaches 100%. That is why this table is 8 rows and a 20 Hz page is 8.
| Sample rate | b0 | b1 | b2 | a1 | a2 | Pole r | f₀/Nyquist |
|---|---|---|---|---|---|---|---|
| 8 kHz | 1.325516 | -0.227299 | 0.234319 | -0.559642 | 0.227492 | 0.476961 | 40.0% |
| 16 kHz | 1.160044 | -1.164492 | 0.412629 | -1.266295 | 0.470870 | 0.686200 | 20.0% |
| 22.1 kHz | 1.115515 | -1.406190 | 0.522077 | -1.463903 | 0.579878 | 0.761497 | 14.5% |
| 32 kHz | 1.079109 | -1.599316 | 0.637712 | -1.628622 | 0.687514 | 0.829165 | 10.0% |
| 44.1 kHz | 1.057118 | -1.713650 | 0.721172 | -1.729772 | 0.762168 | 0.873023 | 7.3% |
| 48 kHz | 1.052413 | -1.737856 | 0.740539 | -1.751597 | 0.779210 | 0.882729 | 6.7% |
| 96 kHz | 1.025990 | -1.871870 | 0.860461 | -1.875507 | 0.882814 | 0.939582 | 3.3% |
| 192 kHz | 1.012928 | -1.936775 | 0.927602 | -1.937711 | 0.939594 | 0.969326 | 1.7% |
const float b0 = 1.05241262f, b1 = -1.73785593f, b2 = 0.74053859f;
const float a1 = -1.75159704f, a2 = 0.77921009f; // a0 == 1What word length this filter survives
The fixed-point rows round all five coefficients to one shared scale, which is what a q15/q31 biquad section does with its post-shift.Pole radius is solved from the quadratic, not taken as √|a₂| — once rounding pushes the poles onto the real axis those two disagree, and the convenient one reports a comfortable margin on a filter that has already left the unit circle. Error is the worst deviation from float64 across frequencies where the response is within 40 dB of its own peak; below that it is measuring the −200 dB floor.
| Word format | Q format | Largest pole | √|a₂| says | Stable | Worst error in band |
|---|---|---|---|---|---|
| float64 | — | 0.8827288 | 0.8827288 | yes | reference |
| float32 | — | 0.8827288 | 0.8827288 | yes | 0.0000 dB |
| 32-bit fixed | Q1.30 | 0.8827288 | 0.8827288 | yes | 0.0000 dB |
| 24-bit fixed | Q1.22 | 0.8827288 | 0.8827288 | yes | 0.0000 dB |
| 16-bit fixed | Q1.14 | 0.8827434 | 0.8827434 | yes | 0.0082 dB |
What gain does at 1.6 kHz
A shelf reaches half its dB gain at f₀ — exactly half, at every sample rate — and its full gain on the far side.
| Gain | At f₀ | b0 | a1 | a2 | Pole r |
|---|---|---|---|---|---|
| -12 dB | −6.00 dB | 0.901595 | -1.587594 | 0.659157 | 0.811885 |
| -6 dB | −3.00 dB | 0.950198 | -1.651307 | 0.703658 | 0.838843 |
| -3 dB | −1.50 dB | 0.974867 | -1.679531 | 0.724220 | 0.851011 |
| +3 dB | +1.50 dB | 1.025781 | -1.729525 | 0.761978 | 0.872913 |
| +6 dB | +3.00 dB | 1.052413 | -1.751597 | 0.779210 | 0.882729 |
| +12 dB | +6.00 dB | 1.109146 | -1.790591 | 0.810529 | 0.900294 |
Questions this filter answers
What are the biquad coefficients for a 1.6 kHz low-shelf filter at 48 kHz?
b0 = 1.052413, b1 = -1.737856, b2 = 0.740539, a1 = -1.751597, a2 = 0.779210, with a0 normalised to 1 — the RBJ Audio EQ Cookbook form at Q = 0.7071 and +6 dB of gain. Every other sample rate in the table above gives different numbers for the same filter, because w0 = 2πf0/Fs and every cosine and sine downstream of it moves.
Is a 1.6 kHz low-shelf filter stable in 16-bit fixed point?
Yes. Rounding the five coefficients to a shared 1.14 scale leaves the largest pole at 0.8827434, against 0.8827288 exact, and the response drifts by at most 0.008 dB inside the band. 24-bit takes that to 0.0000 dB.
Where is the real −3 dB point of a 1.6 kHz low-shelf filter?
1602.8 Hz, which is 1.002× the 1.6 kHz corner. f0 and the −3 dB point are the same frequency only at Q = 1/√2; this page is designed at Q = 0.7071, and a shelf does not read Q at all — its slope is fixed at S = 1, matching Web Audio's BiquadFilterNode, so the gain sweep above is the family that moves this filter rather than a Q sweep.
How close to the unit circle are the poles of a 1.6 kHz low-shelf filter?
0.8827288 at 48 kHz, as a conjugate pair at ±7.18°. Pole radius rises toward 1 as the corner frequency falls relative to the sample rate — the same filter at 192 kHz sits at 0.9693264 and at 8 kHz at 0.4769611. That distance is the whole story of the fixed-point table: a pole a few parts in 10⁵ from the circle has nowhere to be rounded to.
The neighbouring corners
One third-octave either side, and the same 1.6 kHz corner as every other filter type.
- Low-pass1.6 kHz
- High-pass1.6 kHz
- Band-pass1.6 kHz
- Notch1.6 kHz
- All-pass1.6 kHz
- Peaking EQ1.6 kHz
- High shelf1.6 kHz
Method and limits. Coefficients follow the RBJ Audio EQ Cookbook, the bilinear transform of the analog prototype prewarped so the corner lands exactly on f0 — which is why +3.00 dB at 1.6 kHz holds at every sample rate in the table rather than only at low f0/Fs. Shelves fix the slope at S = 1, matching Web Audio's BiquadFilterNode, so Q is not read for those two types. Pole and zero radii are the roots of the quadratic, not sqrt(|a2|). The fixed-point rows model a single shared coefficient scale and no other quantisation: they say nothing about signal-path headroom, limit cycles or the accumulator width your implementation uses, all of which can make a filter that passes this table still misbehave. Nothing on this page is fetched or estimated — it is solved from the type and the frequency in the URL.