7bc9afae33
Follows lib/esp32-lua-api: gui -> screen, node -> tree, settings and input split into screen/sys/touch/buttons. Settings is one provider lighter, with timezone on Sys and rotation and theme on Gui, which now applies and persists a rotation in one call. The calibration screen stashes the rotation it borrows rather than relying on a transient setter.
141 lines
5.3 KiB
Lua
141 lines
5.3 KiB
Lua
-- Run: lua test/settings_calibration.lua
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-- Drives the settings app on a desktop Lua, through the shared fake device. Controls are
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-- pressed by label rather than by coordinate: where a row lands is layout, and layout is
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-- asserted in test/ui_layout_test.cpp against the C++ the panel actually runs.
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package.path = "sdcard/.lua/lib/?.lua;test/?.lua;" .. package.path
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local device = require("fake_device").install()
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local SETTINGS = "sdcard/.lua/apps/Settings/main.lua"
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local app = device.start(SETTINGS)
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local tapRow = device.tap
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-- Relaunching is how a test gets a clean screen, because that is what the firmware does:
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-- a new app is a new state that builds itself from nothing.
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local function restart()
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app = device.start(SETTINGS)
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end
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-- A perfectly linear panel spanning raw 200..3800 over 320x480 must round-trip
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-- to those same extremes from the two inset samples.
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local inset, w, h = 30, 320, 480
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local function raw(pixel, size)
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return 200 + (3800 - 200) * pixel / size
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end
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local s1 = { x = raw(inset, w), y = raw(inset, h) }
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local s2 = { x = raw(w - inset, w), y = raw(h - inset, h) }
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local x0, y0, x1, y1 = app.computeCalibration(s1, s2, w, h, inset)
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assert(math.abs(x0 - 200) <= 1, "x0 " .. x0)
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assert(math.abs(y0 - 200) <= 1, "y0 " .. y0)
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assert(math.abs(x1 - 3800) <= 1, "x1 " .. x1)
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assert(math.abs(y1 - 3800) <= 1, "y1 " .. y1)
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-- A flipped panel (raw decreasing with pixel) must yield a descending range.
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local s3 = { x = 3800 - raw(inset, w) + 200, y = s1.y }
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local s4 = { x = 3800 - raw(w - inset, w) + 200, y = s2.y }
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local fx0, _, fx1 = app.computeCalibration(s3, s4, w, h, inset)
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assert(fx0 > fx1, "flipped axis should descend")
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-- Timezone cycles through the picker list.
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local zones = require "timezones"
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restart()
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tapRow "Timezone"
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assert(sys.getTimezone() == zones[2].tz, "timezone " .. sys.getTimezone())
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-- Cycling rebuilds the screen, which is the only way a screen changes now, so the card
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-- shows the new zone and the menu is still the same size.
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local beforeCycle = tree.getCount()
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assert(device.labelled(zones[2].name), "timezone card did not take its new value")
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assert(tree.getCount() == beforeCycle, "the rebuilt menu grew")
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tapRow "Timezone"
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assert(sys.getTimezone() == zones[3].tz, "timezone " .. sys.getTimezone())
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-- Rotation cycles through the four quarter turns and wraps back to 0.
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restart()
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for _, expected in ipairs { 90, 180, 270, 0 } do
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tapRow "Rotation"
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assert(screen.getRotation() == expected, "rotation " .. screen.getRotation())
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end
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-- Calibration collects one sample per target and saves on the second release.
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restart()
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tapRow "Calibrate"
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app.tick() -- release after the menu tap arms sampling
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device.raw = { s1.x, s1.y }
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app.tick()
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device.raw = nil
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app.tick()
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device.raw = { s2.x, s2.y }
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app.tick()
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device.raw = nil
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app.tick()
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local saved = device.calibration
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assert(saved, "calibration was not saved")
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assert(math.abs(saved[1] - 200) <= 1, "saved x0 " .. saved[1])
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-- WiFi controls reflect connection state without exposing configured network details on the card.
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device.status = { state = "disconnected", ssid = "", ip = "", rssi = 0 }
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restart()
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tapRow "WiFi"
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assert(not device.find "connect" and not device.find "disconnect", "unconfigured wifi has no toggle")
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device.status = { state = "disconnected", ssid = "saved", ip = "", rssi = 0 }
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restart()
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tapRow "WiFi"
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assert(device.find "connect" and not device.find "disconnect", "configured wifi can reconnect")
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tapRow "connect"
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assert(device.wifiReconnect, "wifi reconnect should use saved credentials")
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device.status = { state = "connected", ssid = "saved", ip = "192.168.1.2", rssi = -40 }
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restart()
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tapRow "WiFi"
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assert(device.find "disconnect" and not device.find "connect", "connected wifi can disconnect")
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tapRow "disconnect"
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assert(device.status.state == "disconnected" and device.status.ssid == "saved", "disconnect preserves wifi intent")
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-- Open networks connect directly from scan results.
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restart()
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device.networks = { { ssid = "qemu", rssi = -25, secure = false } }
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tapRow "WiFi"
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tapRow "scan networks"
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app.tick()
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tapRow "qemu"
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assert(device.connected, "open network should connect without a keyboard")
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assert(device.connected[1] == "qemu" and device.connected[2] == "", "open wifi connect")
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-- Secure networks route through the keyboard and preserve typed punctuation.
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restart()
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device.networks = { { ssid = "secure", rssi = -40, secure = true } }
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tapRow "WiFi"
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tapRow "scan networks"
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app.tick()
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tapRow "secure"
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app.tick()
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-- The keyboard is one custom node with no child per key, so its keys are reached through
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-- its own geometry rather than by label. getRect() answers the same box to the test and
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-- to the widget, which is what makes the two agree on where "q" is.
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local keyboard = require "keyboard"
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local board = device.findKind "custom"
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assert(board, "the secure network did not open a keyboard")
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local boardRect = { x = 0, y = 0, w = 10000, h = 10000 }
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local function typeKey(label)
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local pressed
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keyboard.eachKey("lower", boardRect, function(_, keyLabel, x, y, width)
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if keyLabel == label and not pressed then
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pressed = { x = x + width // 2, y = y + 15 }
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end
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end)
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assert(pressed, "no key labelled " .. label)
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device.press(board, pressed.x, pressed.y)
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end
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for key in ("qemuqemu"):gmatch "." do
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typeKey(key)
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end
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typeKey "OK"
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assert(device.connected[1] == "secure" and device.connected[2] == "qemuqemu", "secure wifi password")
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print "ok"
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