Verilog problems / Sequential Design
What you must build
A Moore FSM detecting the pattern 101 on a serial stream — but unlike the overlapping 1011 detector, a match here consumes all three bits before searching resumes.
Engineers use “Sequence Detector: 101 (Non-Overlapping)” as a building block in sequential design. Interviewers ask for the same ports and the same corner cases this judge covers. Completing it in the browser is the same skill as writing synthesizable RTL at work, minus the EDA license.
S3 transitions exactly like S0 would. That single difference is what makes back-to-back matches non-overlapping.Port contract
The judge instantiates exactly these ports. Extra ports or a different module name fail to elaborate.
| Name | Dir | Width | Description |
|---|---|---|---|
| clk | input | 1 | Clock |
| rst | input | 1 | Sync active-high reset |
| in | input | 1 | Serial bit stream, one bit per clock |
| detected | output | 1 | High for one cycle after "101" is matched |
How to approach this kata
This is a medium kata: you will need sequential logic or a small FSM. Decide what is registered versus combinational before you type. Reset polarity and clock edge must match the spec; the judge will fail you on the first mismatched cycle.
Hidden tests instantiate top_module, drive the ports, and compare every sample against a golden model. They do not grade coding style. They do grade X/Z, off-by-one counters, and ignoring enables. Sign in only when you want the run saved on the leaderboard — the specification below is public.
Starter shape
Copy this skeleton into the editor (or press Reset starter). Fill the body; do not rename the module.
module top_module( input clk, input rst, input in, output detected ); // Your code here — 4-state FSM (S0..S3); S3 should transition just like S0. endmodule
Why this shows up in interviews
Sequence Detector: 101 (Non-Overlapping) sits under Sequential Design (sequential, fsm). Concept: Same 4-state shape as an overlapping detector (S0..S3), but the "just matched" state S3 restarts the search from scratch instead of reusing the failure function: S3 transitions exactly like S0 would. That single difference is what makes back-to-back matches non-overlapping.
A passing solution is synthesizable intent: no delays in the DUT, no initial blocks inside top_module, and no reference to testbench tasks. Use blocking assignments only in combinational always blocks; use non-blocking for registers clocked by clk.
Related problems
- D Flip-Flop with Asynchronous Reset — Standard D flip-flop with an active-low asynchronous reset. Reset clears q immediately, without waiting for a clock edge.
- 4-Bit Shift Register (SIPO) — Serial-in, parallel-out shift register. Each clock, shift left and load sin into the LSB. Sync active-high reset clears q.
- JK Flip-Flop — The flip-flop with no forbidden state: j=k=1 toggles instead of racing. Classic building block for counters.
- 4-Bit Up/Down Counter — A synchronous counter that increments or decrements each clock edge depending on a direction input, with a synchronous reset.
FAQ
What does this problem require?
What does the Sequence Detector: 101 (Non-Overlapping) problem ask for? A Moore FSM detecting the pattern 101 on a serial stream — but unlike the overlapping 1011 detector, a match here consumes all three bits before searching resumes. Implement it as Verilog module top_module with the listed ports.
Combinational or sequential?
Is Sequence Detector: 101 (Non-Overlapping) combinational or sequential? Tags: sequential, fsm. Follow the clock/reset ports if they appear in the table; if there is no clock, use continuous assignment or combinational always @(*).
How does the auto-grader work?
How is Sequence Detector: 101 (Non-Overlapping) graded? A hidden SystemVerilog/Verilog testbench in the EcrioniX judge simulates your module in the browser. You pass when every directed vector matches, including the waveform contract shown on this page.