Generated reference › Signed Sqrt — Control Systems/Base Blocks
kind: generated#block#control-systems-base-blocks

Signed Sqrt — Control Systems/Base Blocks

Control_Systems/Base_Blocks/Signed_Sqrt · 1 input / 1 output port(s) at insert · exports to Python, MATLAB, Java, Rust, C, C++, VHDL, Verilog, SystemVerilog, PLC Structured Text

Description#

The block's own DESCRIPTION_HTML, rendered verbatim — the same text the config dialog's info panel and the library navigator show. Fix a wrong sentence in the block's .cpp (R-D9), never here.

Signed Sqrt

Control Systems / Base Blocks

Takes the square root of the input's magnitude and gives it back the input's sign, entry by entry: y = sign(u)·√|u|. It is the square root extended to negative inputs, and the only form of it that is defined for every real input – there are no out-of-domain values and no NaN.

Ports

  • Input – the signal u, of any size [m,n]. Every real value is in domain.
  • Output – the signed root y, of the SAME size [m,n]. The block never reshapes a signal.

Parameters

  • Sampling Time (s) – zero or less inherits the solver's rate; a positive value runs the block at that period.

Code export

All ten targets: Python, MATLAB, Java, Rust, C, C++, VHDL, Verilog, SystemVerilog and PLC Structured Text. There is nothing to expose as a tunable parameter: the operation is the block, so it is emitted straight into the arithmetic.

The seven software targets agree exactly, on every real input. The sign is carried by an explicit test on u < 0 rather than by a sign() function, because Java's Math.signum and Rust's f64::signum answer ±1 at ±0.0 and would turn √0 into a signed zero the C++ reference does not produce.

The three HDL targets are simulation-only. There is no square root in the Q16.16 datapath to call, so the generated cores convert at the port boundary and evaluate the root in real arithmetic – correct in simulation, but not offered as synthesizable. They carry no NaN, which costs nothing here: this block has no out-of-domain values to represent.

Simulink bridge

Import and export, mapped to simulink/Math Operations/Signed Sqrt. That library entry is Simulink's Sqrt block pre-set to Operator = signedSqrt, so the entry writes that Operator as a fixed parameter – it has no ICore config behind it, because this block offers no choice of operator. An imported block whose Operator says anything else is reported rather than silently accepted. "Sampling Time (s)" maps to SampleTime, as on every block.

Notes

  • Algebraic, with no state: the output depends only on the current input.
  • Not linear, so the block deliberately carries no state space and model reduction reports it as unmergeable.
  • ICore's Sqrt block offers this same operator alongside the plain and reciprocal roots. Use that one to switch between them on a single block; use this one when the operation is fixed, and to round-trip Simulink's own Signed Sqrt library entry.

Code facts#

FactValue
registered typeControl_Systems/Base_Blocks/Signed_Sqrt
familyControl_Systems/Base_Blocks
solver environment classICoreBlock_0_Control_Systems_1_Base_Blocks_2_Signed_Sqrt
sourcesrc/ICoreSDK/ICoreBlockLibrary/Blocks/Control_Systems/Base_Blocks/Signed_Sqrt/ICoreBlock_0_Control_Systems_1_Base_Blocks_2_Signed_Sqrt.cpp
headersrc/ICoreSDK/ICoreBlockLibrary/Blocks/Control_Systems/Base_Blocks/Signed_Sqrt/ICoreBlock_0_Control_Systems_1_Base_Blocks_2_Signed_Sqrt.h
default size on canvas70 × 70 px
ports at insert1 in, 1 out
code generators implementedPython, MATLAB, Java, Rust, C, C++, VHDL, Verilog, SystemVerilog, PLC Structured Text

Ports#

#DirectionSignal typeDescription label
1inICoreDouble
2outICoreDouble

Ports the constructor creates. A block whose port list changes with its configuration adds or removes ports at load time; the count above is the one a freshly inserted block has.

Configuration variables#

No config variable beyond the Sampling Time (s) every block carries.

Every block also carries Sampling Time (s) from ICoreBlockSolverEnvironment: zero or less inherits the solver's rate, a positive value runs the block at that period.

supportSupport::Both
Simulink pathsimulink/Math Operations/Signed Sqrt
port-count rulePortsParam::None
SampleTime parameteryes
always setOperator = signedSqrt

Catalog contract: src/ICoreSDK/ICoreCoder/ICoreCommandSystem/SimulinkBridge/ICoreSimulinkBlockCatalog.h

Description vs code#

The lists agree. check_block_descriptions.py finds no disagreement between the description's Ports, Parameters, Code export and Simulink bridge lists and the code's.

The verdict above is tools/docs/check_block_descriptions.py (P7.1), which compares LISTS. It cannot read a sentence: "stateless" on a block with a state, an initial-value semantic the recursion does not implement, a "not synthesizable" caveat the HDL banner contradicts. That is the agent audit (P7.3) on BLOCK_DESCRIPTION_AUDIT.md, and this tool's green is not a substitute for one.

File banner (developer view)#

The top comment of the block's .cpp — the maths, the realization and the export strategy, addressed to whoever changes it. It must not contradict the description above (P7.5).

Signed Sqrt block -- the square root extended to negative inputs y = sign(u) * sqrt(|u|), entry by entry. Algebraic and stateless, no state space (the root is not linear). It is the one root with NO out-of-domain values: |u| is never negative, so every real input has a real answer and the ten targets never have to agree on a NaN.

RELATIONSHIP TO THE Sqrt BLOCK. Simulink's Signed Sqrt is its Sqrt block pre-set to Operator = signedSqrt, and ICore's Sqrt offers that operator too, so the arithmetic here is deliberately identical to that block's SignedSqrt branch. What this block adds is the BRIDGE IDENTITY: it maps to simulink/Math Operations/Signed Sqrt, so a model containing that library entry imports as the same block it left as, instead of collapsing into a general Sqrt whose Operator a later edit could silently change.

HDL. Q16.16 has no square root to call, so the three HDL backends are SIMULATION-ONLY: they convert at the port boundary and evaluate the root in real. Unlike the plain and reciprocal roots they need no out-of-domain guard for correctness -- the root is taken of a magnitude -- but math_real.sqrt still asserts on a negative argument, so the branch is written to hand it |u| either way.

Sample results#

Signed Sqrt — Repeating Sequence Stair: [-2 -1 -0.5 0 0.5 1 2 3], one entry per sampleSigned Sqrt — Repeating Sequence Stair: [-2 -1 -0.5 0 0.5 1 2 3], one entry per sample-101-2-10123inputoutput
tin ICoreDouble-Out-0out ICoreDouble-Out-0
0-2-1.414
0.40.50.7071
0.8-2-1.414
1.20.50.7071
1.6-2-1.414
20.50.7071
2.4-2-1.414
2.80.50.7071
3.2-2-1.414
3.60.50.7071
4-2-1.414
4.40.50.7071
4.8-2-1.414
5.20.50.7071

Every 4th of 60 samples, from the table stimulus.

The same rig also ran:

StimulusWhat it isOutput range
impulseImpulse: one sample of 1 at k = 5, 0 elsewhere (Repeating Sequence Stair)0 … 1
rampRamp: slope 1 from t = 00 … 2.408
sineSine Wave: amplitude 1, 2 rad/s, no phase, no bias-1 … 0.9998
stepStep: 0 -> 1 at t = 1 s0 … 1

Plotted: table — Repeating Sequence Stair: [-2 -1 -0.5 0 0.5 1 2 3], one entry per sample

Category static · sample time 0.1 · 60 steps · commit ccf005c8 · produced by docsSample --out <folder> --steps 60 · data docs/generated/samples/Control_Systems__Base_Blocks__Signed_Sqrt.json · the SVG is generated from those numbers by tools/docs/plot_svg.py, so it is a run and not a drawing (R-D10).