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

Divide — Control Systems/Base Blocks

Control_Systems/Base_Blocks/Divide · 2 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.

Divide

Control Systems / Base Blocks

Combines its inputs entry by entry, each one either multiplying or dividing: y = u₁ · u₂ ÷ u₃ … Any number of inputs is allowed, and every input carries either a * or a /. A leading / is a reciprocal, so a /* port list computes (1/u₁)·u₂.

Ports

  • Inputs – two by default, and the count is user-editable. All of them must carry the same signal size; this block does not expand a scalar over a matrix.
  • Output – the combined signal, of that same size.

Operations

An input's operation is its port description label, not a parameter: click the label on the canvas and type * or /. A blank label counts as *. A fresh block comes up as * then /, matching Simulink's default. Because the operation lives on the port, it travels with copy, undo and save, and can never fall out of step with the port count – the same arrangement Sum uses for its signs.

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. The operations are fixed into the generated arithmetic at export time; there is nothing left to retune on the generated core.

The seven software targets divide in IEEE double precision and agree exactly, including division by zero, which gives ±Inf (or NaN for 0/0) in all seven.

The three HDL targets are simulation-only. Q16.16 fixed point cannot hold a quotient whose divisor has come near zero – one quantum of the divisor is 1.5×10⁻⁵, so an ordinary signal crossing zero produces a result far outside the format – so the generated cores convert at the port boundary and evaluate in real arithmetic. They are correct in simulation but are not offered as synthesizable, and having no infinity they answer 0 where a divisor is exactly zero.

Simulink bridge

Import and export, mapped to simulink/Math Operations/Divide. There is no parameter behind the operations on either side: the port labels become Simulink's Inputs string (*/), and an imported string becomes this port list. Simulink's Multiplication is always written as Element-wise(.*), which is what this block computes; the matrix form has no counterpart here. "Sampling Time (s)" goes to SampleTime, as on every block.

Notes

  • Algebraic, with no state.
  • Not linear – a product of two signals is not, and nor is a quotient – so the block deliberately carries no state space and model reduction reports it as unmergeable. Gain is the linear sibling, a signal times a constant, and that one can be absorbed.
  • At least two inputs are required, as for Sum. A pure reciprocal is a two-input block with a constant on the first port.

Code facts#

FactValue
registered typeControl_Systems/Base_Blocks/Divide
familyControl_Systems/Base_Blocks
solver environment classICoreBlock_0_Control_Systems_1_Base_Blocks_2_Divide
sourcesrc/ICoreSDK/ICoreBlockLibrary/Blocks/Control_Systems/Base_Blocks/Divide/ICoreBlock_0_Control_Systems_1_Base_Blocks_2_Divide.cpp
headersrc/ICoreSDK/ICoreBlockLibrary/Blocks/Control_Systems/Base_Blocks/Divide/ICoreBlock_0_Control_Systems_1_Base_Blocks_2_Divide.h
default size on canvas70 × 70 px
ports at insert2 in, 1 out
code generators implementedPython, MATLAB, Java, Rust, C, C++, VHDL, Verilog, SystemVerilog, PLC Structured Text

Ports#

#DirectionSignal typeDescription label
1inICoreDoubleOP_MULTIPLY
2inICoreDoubleOP_DIVIDE
3outICoreDouble

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/Divide
port-count rulePortsParam::DivideSigns
SampleTime parameteryes
always setMultiplication = Element-wise(.*)

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

Description vs code#

The checker has a blind spot here — it could not resolve something (a grouped port bullet, a computed config name), which is reported and never counted as a pass. A reader has to settle it:

  • B0 Ports lists 2 entries for 3 ports (2 in, 1 out) — grouped, or one undocumented? a reader must say

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).

Divide block -- element-wise product and quotient y = u1 (op) u2 (op) ... entry by entry, where each input's op is "" or "/", taken from that port's DESCRIPTION LABEL. A leading "/" is a reciprocal, exactly as in Simulink: "/" computes (1/u1)*u2. Algebraic and stateless, no state space (see header).

The three HDL backends are SIMULATION-ONLY real arithmetic, and deliberately so for the whole block rather than only for its "/" ports. A Q16.16 quotient overflows as soon as the divisor drops below |numerator| / 32768 -- one quantum of the divisor is 1.5e-5, so a perfectly ordinary signal passing near zero produces a quotient the datapath cannot hold. That is the dynamic-range argument Recursive IIR and Variable Transport Delay make, and it is the block's own name, so the cores convert at the port boundary and evaluate in real. Doing it for every port rather than only the dividing ones keeps ONE emitted body per target: a fixed-point path taken only by an all-"*" port list is a branch the rigs never select, and an untested branch is worse than a documented limitation.

Sample results#

Divide — Repeating Sequence Stair: [-2 -1 -0.5 0 0.5 1 2 3], one entry per sampleDivide — Repeating Sequence Stair: [-2 -1 -0.5 0 0.5 1 2 3], one entry per sample-202012345t (s)in ICoreDouble-Out-0in ICoreDouble-Out-0out ICoreDouble-Out-0

7 sample(s) were non-finite (nan/inf) and are absent from the plot; they are in the table below and in the JSON.

tin ICoreDouble-Out-0in ICoreDouble-Out-0out ICoreDouble-Out-0
0-2-21
0.40.50.51
0.8-2-21
1.20.50.51
1.6-2-21
20.50.51
2.4-2-21
2.80.50.51
3.2-2-21
3.60.50.51
4-2-21
4.40.50.51
4.8-2-21
5.20.50.51

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)1 … 1
rampRamp: slope 1 from t = 01 … 1
sineSine Wave: amplitude 1, 2 rad/s, no phase, no bias1 … 1
stepStep: 0 -> 1 at t = 1 s1 … 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__Divide.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).