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Starship Check

Unlike Starship Calibration, this isn't computing a fresh calibration — it's a quick verification that an already-calibrated starship still behaves as expected once it's actually inserted into an ear (or an ear-simulating coupler). It plays a chirp through the starship and records the response with the starship's own probe-tube microphone, letting you catch drift or a bad seal before you trust the data from a session.

Why a bench calibration isn't enough

Inserting the probe into an ear changes the acoustics of the system. The ear canal presents a different acoustic load — largely a compliance, set by the enclosed volume — which shifts the resonances of the system, so the transfer function measured in a coupler on the bench is not the transfer function you have in the ear. The probe tube's own resonances move too, since they depend on the length of the acoustic cavity (see Acoustic tube resonance).

The practical rule is that an in-ear measurement has to be repeated every time the probe is repositioned while it's in the ear — it isn't a one-time measurement you can carry across a session. Running a check after each repositioning is what makes that rule cheap to follow. Calibration Math has the equations.

What you'll need

  • A previously calibrated starship (see Starship Calibration).
  • The ear (or coupler) you want to check the starship in.
  • An analog to digital converter and a digital to analog converter.

Opening the workspace

Launch CFTSCal and select the Starship Check workspace.

Settings

Each row corresponds to one physical starship connection on your system.

Field What it means
Starship Which calibrated starship is plugged into this connection. Click + to add a new one to the drop-down list.
dB gain The preamp gain, in dB, currently applied to the starship's microphone.
Coupler A free-form label identifying the coupler or test fixture the starship is checked in (e.g. C1) — some labs instead use this to track a subject/ear per session (e.g. subject ID plus left/right). Click + to add a new one.
Output Whether this check is of the coupler's primary or secondary output.
Target folder Organizes checks into folders, same as every other workspace.

Running a check

Click Calibrate next to a connection once both a Starship and a Coupler have been selected.

Reviewing the results

In-Ear Sensitivity plots the frequency response (in dB) for every check currently selected in the list below. Use Selected frequency (Hz) (or drag the horizontal line on the plot) to pick a frequency of interest.

Δ In-Ear Sensitivity tracks the sensitivity at that one selected frequency across every past check for the same starship, in date order — this is the fastest way to spot slow drift across sessions rather than comparing curves by eye.

Check Show noise floor? to overlay a dashed noise-floor trace on the sensitivity plot.

In-Ear Calibrations (the list) groups checks by folder, same as every other workspace — by default that's one folder per starship, but a lab can reorganize checks into different folders (e.g. by study) via the right-click context menu, independent of which starship was actually checked. Columns:

Column Meaning
Starship Which folder this check is filed under (organizes the list; see Device below if you've filed checks into folders that don't match the starship).
Device The starship label recorded at check time, independent of which folder the check is filed under. Usually matches Starship — compare the two if you've reorganized checks into folders.
Coupler Which coupler/fixture (or ear/subject label) was used.
Starship Channel Which physical connection the starship was plugged into (e.g. Connection A/B).
Output Whether the coupler's primary or secondary output was checked.
Gain The preamp gain, in dB, applied to the starship's microphone.

Sanity-checking a check

  • Does the response look like previous checks of the same starship? A sudden drop or shift usually means the probe moved, got blocked (e.g. by earwax), or the seal in the ear/coupler is leaking.
  • Is the Δ plot flat over time? A slow, steady drift across many sessions is exactly what this workspace is meant to catch — it may be time to recalibrate the starship.

Troubleshooting

Common pitfalls

  • Probe not fully inserted, or blocked by debris/earwax, is the most common cause of an unexpected reading.
  • Gain mismatch between the Settings panel and the starship's actual preamp setting shifts the whole curve by a fixed, predictable amount.
  • Testing against the wrong Starship entry (e.g. after swapping probes) will look like a big, confusing jump in the Δ plot — double-check the selection before assuming the hardware drifted.