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manipulator_v2.py
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'''
Manipulator software, v2: fully automated based on computer vision.
'''
from Tkinter import *
from devices import *
from vision import *
from numpy import array, zeros, eye, dot
from numpy.linalg import LinAlgError, inv
import pickle
from serial import SerialException
import time
# For the camera
import cv2
from PIL import Image, ImageTk
from os.path import expanduser
home = expanduser("~")
config_filename = home+'/config_manipulator_v2.cfg'
class CameraFrame(Toplevel):
def __init__(self, master=None, cnf={}, dev=None, **kw):
Toplevel.__init__(self, master, cnf, **kw)
self.main = Label(self)
self.main.bind("<Button-1>",self.click_left)
self.main.bind("<Button-2>",self.click_right)
self.main.pack()
#width, height = 800, 600
self.cap = cv2.VideoCapture(0)
#self.cap.set(3, width)
#self.cap.set(4, height)
self.width = int(self.cap.get(3))
self.height = int(self.cap.get(4))
self.show_frame()
def set_microscope(self, microscope):
self.microscope = microscope
def show_frame(self):
if self.cap.isOpened():
_, frame = self.cap.read()
width, height = self.width, self.height
# Center cross
cv2.line(frame, (width / 2, height / 2 - 10), (width / 2, height / 2 + 10), (0, 0, 255))
cv2.line(frame, (width / 2 - 10, height / 2), (width / 2 + 10, height / 2), (0, 0, 255))
# Top left
cv2.line(frame, (width / 3, height / 3 - 10), (width / 3, height / 3 + 10), (0, 0, 255))
cv2.line(frame, (width / 3 - 10, height / 3), (width / 3 + 10, height / 3), (0, 0, 255))
# Top right
cv2.line(frame, (2*width / 3, height / 3 - 10), (2*width / 3, height / 3 + 10), (0, 0, 255))
cv2.line(frame, (2*width / 3 - 10, height / 3), (2*width / 3 + 10, height / 3), (0, 0, 255))
# Bottom left
cv2.line(frame, (width / 3, 2*height / 3 - 10), (width / 3, 2*height / 3 + 10), (0, 0, 255))
cv2.line(frame, (width / 3 - 10, 2*height / 3), (width / 3 + 10, 2*height / 3), (0, 0, 255))
#frame = cv2.flip(frame, 1)
cv2image = cv2.cvtColor(frame, cv2.COLOR_BGR2RGBA)
imgtk = ImageTk.PhotoImage(image=Image.fromarray(cv2image))
self.main.imgtk = imgtk
self.main.configure(image=self.main.imgtk)
self.main.after(100, self.show_frame)
def click_left(self, e):
self.microscope.click(e.x, e.y, button = 1)
def click_right(self, e):
self.microscope.click(e.x, e.y, button = 2)
def autofocus(self):
'''
Autofocus algorithm.
Ideally, use Xu et al. 2011, Robust Automatic Focus Algorithm for Low Contrast Images Using a New Contrast Measure
Here we simply use normalized standard deviation of the image as focus function, and global search
(or Fibonacci search or other; eg from scipy.optimize).
'''
print "Autofocus (in development)"
timeout = 30. # Time out
# Do this in show_frame()?
# Capture 20 images
img = []
self.microscope.unit.relative_move(-10., axis=2) # 1 um
for i in range(20):
_, frame = self.cap.read()
img.append(frame)
self.microscope.unit.relative_move(1., axis = 2) # 1 um
self.microscope.unit.wait_until_still(axis = 2 )
pickle.dump(img, open('pipette_stack.img', "wb"))
def destroy(self):
self.cap.release()
Toplevel.destroy(self)
class MemoryFrame(Frame):
'''
A frame for saving/load current position in memory
'''
def __init__(self, master=None, name = '', unit = None, cnf={}, dev=None, **kw):
Frame.__init__(self, master, cnf, **kw)
self.master = master
self.unit = unit
#self.name = StringVar(value = name)
self.name = name
Label(self, text = self.name).pack(side = LEFT)
Button(self, text="Store", command=self.store).pack(side = LEFT)
Button(self, text="Go", command=self.go).pack(side = LEFT)
def store(self):
self.unit.memory[self.name] = self.unit.position()
self.master.master.display_status("Storing position '"+self.name+"'")
def go(self):
self.unit.absolute_move(self.unit.memory[self.name])
self.master.master.display_status("Moving to position '" + self.name + "'")
class UnitFrame(LabelFrame):
'''
A named frame that displays unit coordinates.
TODO:
* change the move command
'''
def __init__(self, master = None, unit = None, cnf = {}, dev = None, **kw):
'''
Parameters
----------
master : parent window
unit : XYZ unit
'''
LabelFrame.__init__(self, master, cnf, **kw)
self.master = master
self.unit = unit # XYZ unit
class MicroscopeFrame(UnitFrame):
'''
A frame for the microscope and stage.
'''
def __init__(self, master = None, unit = None, cnf = {}, **kw):
'''
Parameters
----------
master : parent window
unit : XYZ unit
'''
UnitFrame.__init__(self, master, unit, cnf, **kw)
Button(self, text="Calibrate", command=self.calibrate).pack()
Button(self, text="Autofocus", command=self.master.camera.autofocus).pack()
MemoryFrame(self, name="Calibration", unit=unit).pack()
MemoryFrame(self, name="Preparation", unit=unit).pack()
# Calibration variables
self.calibrate_step = -1
self.x = zeros((3,2)) # we ignore the z dimension
width, height = self.master.camera.width, self.master.camera.height
self.y = zeros((3,2))
self.y[0] = (width/3,height/3)
self.y[1] = (2*width / 3, height / 3)
self.y[2] = (width / 3, 2*height / 3)
self.center = array([width / 2, height / 2])
self.M = eye(2)
self.Minv = eye(2)
self.x0 = zeros(2)
def click(self,xs,ys, button = None):
y = array([xs,ys]) # Camera position
x = dot(self.M,y)+self.x0
# Move manipulator 1
x3D = self.unit.position()
x3D[:2]+= x
print button
self.master.frame_manipulator[button-1].unit.absolute_move(x3D)
def calibrate(self): # Automatic calibration
self.x[0] = self.unit.position()[:2]
self.y[0] = self.center
_, template = self.master.camera.cap.read()
cv2.imwrite('pipette1.jpg', template)
# Move X axis
self.unit.relative_move(50., axis = 0) # 50 um
self.unit.wait_until_still(axis = 0)
# Template matching
_, img = self.master.camera.cap.read()
self.x[1] = self.unit.position()[:2]
self.y[1] = find_template(img, template)[:2] ## Actually we should shift to center point, since this is relative to (0,0)
cv2.imwrite('pipette2.jpg', img)
# Move Y axis
self.unit.relative_move(50., axis=1) # 50 um
self.unit.wait_until_still(axis=1)
# Template matching
_, img = self.master.camera.cap.read()
self.x[2] = self.unit.position()[:2]
self.y[2] = find_template(img, template)[:2]
cv2.imwrite('pipette3.jpg', img)
print self.y[2]
self.master.display_status("Calibration done.")
self.calculate_calibration()
def calculate_calibration(self):
dx = self.x.T
dx = dx[:,1:] - dx[:,0:-1] # we calculate shifts relative to first position
dy = self.y.T
dy = dy[:, 1:] - dy[:, 0:-1]
self.M = -dot(dx, inv(dy))
self.Minv=inv(self.M)
# Clicking on the center means no movement
self.x0 = -dot(self.M, self.center)
class ManipulatorFrame(UnitFrame):
'''
A frame for a manipulator, showing virtual coordinates.
TODO:
* Change pipette
'''
def __init__(self, master = None, unit = None, cnf = {}, dev = None, **kw):
UnitFrame.__init__(self, master, unit, cnf, **kw)
Button(self, text="Go", command=self.go).pack()
Button(self, text="Confirm position", command=self.confirm_position).pack()
Button(self, text="Change pipette", command=self.change_pipette).pack()
Button(self, text="Calibrate", command=self.calibrate).pack()
MemoryFrame(self, name = "Position 1", unit = unit).pack()
MemoryFrame(self, name = "Position 2", unit = unit).pack()
# Calibration data
self.calibration_step = -1
self.calibration_x = zeros((4, 3))
self.calibration_y = zeros((4, 3))
def go(self):
self.master.display_status("Moving pipette to microscope position.")
self.unit.go()
def confirm_position(self):
if self.calibration_step==-1:
self.unit.secondary_calibration() # unless in calibration
self.master.display_status("Recalibrated.")
elif self.calibration_step==0:
self.unit.save_home()
self.master.display_status("Step 2"+
"\nCenter pipette tip in microscope view and press 'Confirm position'.")
self.calibration_step = 1
else: # in calibration
self.calibration_x[self.calibration_step-1] = self.unit.stage.position()
self.calibration_y[self.calibration_step-1] = self.unit.dev.position()
if self.calibration_step == 4: # Done
self.master.display_status("Calibration done.")
try:
self.unit.primary_calibration(self.calibration_x,self.calibration_y)
self.display_precision()
except LinAlgError:
self.master.display_status("Calibration failed (redundant positions).")
self.calibration_step = -1
# Move microscope back to first position
self.unit.stage.absolute_move(self.calibration_x[0])
# Withdraw pipette
self.unit.home()
else: # move unit by 500 um along one axis
axis_name = ['X', 'Y', 'Z']
self.master.display_status("Step " + str(self.calibration_step+2) +
"\nMove pipette along the "+axis_name[self.calibration_step-1]+"axis, move stage to center pipette tip and press 'Confirm position'.")
#self.unit.dev.relative_move(500., axis = self.calibration_step-1)
self.calibration_step+=1
def change_pipette(self):
# Move microscope to calibration position
self.unit.stage.absolute_move(self.unit.stage.memory['Calibration'])
# Withdraw pipette
self.unit.home()
# TODO: move pipette in view, click "go"
self.master.display_status("Center pipette tip in microscope view and press 'Confirm position'.")
# TODO: move pipette back
# TODO: move microscope back
def calibrate(self):
if self.calibration_step == -1:
# Move microscope to calibration position
self.unit.stage.absolute_move(self.unit.stage.memory['Calibration'])
# Ask user to withdraw pipette
self.master.display_status("Step 1"+
"\nWithdraw the pipette and click 'Confirm position'.")
self.calibration_step = 0
else:
self.master.display_status("Calibration aborted.")
self.calibration_step = -1
def display_precision(self):
'''
Displays the relative precision of calibration along the 3 axes
'''
x,y,z = self.unit.calibration_precision()
self.master.display_status("Precision:\n"+
"x : "+"{:3.3f}".format(x)+"\n"+
"y : "+"{:3.3f}".format(y)+"\n"+
"z : "+"{:3.3f}".format(z))
class ManipulatorApplication(Frame):
'''
The main application.
'''
def __init__(self, master, stage, units, names):
'''
Parameters
----------
master : parent window
stage : the stage/microscope unit
units : a list of XYZ virtual units (manipulators)
names : names of the units
'''
Frame.__init__(self, master)
self.camera = CameraFrame(master)
self.camera.wm_title("Camera")
self.frame_microscope = MicroscopeFrame(self, text='Microscope', unit=stage)
self.frame_microscope.grid(row=0, column=0, padx=5, pady=5, sticky=N)
self.camera.set_microscope(self.frame_microscope)
self.frame_manipulator = []
i = 0
for name, unit in zip(names, units):
frame = ManipulatorFrame(self, text=name, unit=unit)
frame.grid(row=0, column=i + 1, padx=5, pady=5)
self.frame_manipulator.append(frame)
i += 1
self.statusframe = LabelFrame(self, text='Status')
self.statusframe.grid(row=1, column=0, columnspan=3, padx=5, pady=30, sticky=W + E)
self.status = StringVar('')
Label(self.statusframe, textvariable=self.status, justify=LEFT).pack(padx=5, pady=5)
Button(self, text="STOP", command=self.stop).grid(row=2, column=1, padx=5, pady=5)
Button(self, text="Motor ranges", command=self.motor_ranges).grid(row=2, column=0, padx=5, pady=5)
Button(self, text="TEST", command=self.test).grid(row=2, column=2, padx=5, pady=5)
self.load_configuration()
welcome_text =\
"""Set-up:
1) Move the microscope to the position of interest and store in "Preparation" memory.
2) Move the microscope up by about 2 mm above the preparation and store in "Calibration" memory.
3) Click Change pipette or Calibrate.
"""
self.display_status(welcome_text)
self.motor_ranges_status = -1 # -1 means not doing the calibration
def display_status(self, text):
self.status.set(text)
def stop(self):
self.frame_microscope.unit.stop()
for frame in self.frame_manipulator:
frame.unit.stop()
def save_configuration(self):
'''
Save memories and calibration.
'''
microscope_cfg = {'memory' : self.frame_microscope.unit.memory,
'M' : self.frame_microscope.M,
'Minv' : self.frame_microscope.Minv,
'x0' : self.frame_microscope.x0}
manipulator_cfg = []
for frame in self.frame_manipulator:
cfg = {'memory' : frame.unit.memory,
"dev.memory" : frame.unit.dev.memory,
'M' : frame.unit.M,
'x0' : frame.unit.x0,
'Minv' : frame.unit.Minv }
manipulator_cfg.append(cfg)
motor_cfg = {}
cfg_all = {'manipulator' : manipulator_cfg,
'microscope' : microscope_cfg}
pickle.dump(cfg_all, open(config_filename, "wb"))
def load_configuration(self):
'''
Load memories and calibration
'''
try:
cfg_all = pickle.load(open(config_filename, "rb"))
self.frame_microscope.unit.memory = cfg_all['microscope']['memory']
try:
self.frame_microscope.M = cfg_all['microscope']['M']
self.frame_microscope.Minv = cfg_all['microscope']['Minv']
self.frame_microscope.x0 = cfg_all['microscope']['x0']
except KeyError: # not yet updated
pass
for frame, cfg in zip(self.frame_manipulator, cfg_all['manipulator']):
frame.unit.memory = cfg['memory']
try:
frame.unit.dev.memory = cfg['dev.memory']
except KeyError:
pass # not yet updated
frame.unit.M = cfg['M']
frame.unit.Minv = cfg['Minv']
frame.unit.x0 = cfg['x0']
except IOError:
self.display_status("No configuration file.")
time.sleep(1)
def minmax(self, p1, p2):
'''
Calculate min(p1.x, p2.x) for each XYZ coordinate,
and max(p1.x, p2.x) for each XYZ coordinate.
'''
return array([min(p1[i], p2[i]) for i in range(len(p1))]),\
array([max(p1[i], p2[i]) for i in range(len(p1))])
def motor_ranges(self):
'''
Measure the range of all motors.
'''
if self.motor_ranges_status == -1:
self.display_status("Move the stage and microscope to one corner and click 'Motor ranges'.")
self.motor_ranges_status = 0
elif self.motor_ranges_status == 0:
self.x1 = self.frame_microscope.unit.position()
self.display_status("Move the stage and microscope to the opposite corner and click 'Motor ranges'.")
self.motor_ranges_status = 1
elif self.motor_ranges_status == 1:
# Measure position and calculate min and max positions
self.x2 = self.frame_microscope.unit.position()
self.frame_microscope.unit.memory['min'], self.frame_microscope.unit.memory['max'] = self.minmax(self.x1, self.x2)
print self.minmax(self.x1, self.x2)
# Next device
self.display_status("Move manipulator 1 to one corner and click 'Motor ranges'.")
self.motor_ranges_status = 2
elif self.motor_ranges_status % 2 == 0: # first corner clicked
manipulator = self.frame_manipulator[self.motor_ranges_status/2-1].unit.dev
self.x1 = manipulator.position()
self.display_status("Move manipulator "+ str(self.motor_ranges_status/2)+" to the opposite corner and click 'Motor ranges'.")
self.motor_ranges_status+= 1
elif self.motor_ranges_status % 2 == 1: # opposite corner clicked
manipulator = self.frame_manipulator[self.motor_ranges_status/2-1].unit.dev
self.x2 = manipulator.position()
manipulator.memory['min'], manipulator.memory['max'] = self.minmax(self.x1,self.x2)
print self.minmax(self.x1, self.x2)
if self.motor_ranges_status/2<len(self.frame_manipulator):
self.display_status("Move manipulator "+ str(self.motor_ranges_status/2+1)+" to the first corner and click 'Motor ranges'.")
self.motor_ranges_status+= 1
else: # Done
self.display_status("Motor range calibration done.")
self.motor_ranges_status = -1
def test(self):
'''
We use this to test development functions.
'''
pass
def destroy(self):
self.save_configuration()
if __name__ == '__main__':
root = Tk()
root.title('Manipulator')
ndevices = 2
try:
dev = LuigsNeumann_SM10()
except SerialException:
print "L&N SM-10 not found. Falling back on fake device."
dev = FakeDevice()
microscope = XYZUnit(dev, [7, 8, 9])
unit = [XYZUnit(dev, [1, 2, 3]),
XYZUnit(dev, [4, 5, 6])]
virtual_unit = [VirtualXYZUnit(unit[i], microscope) for i in range(ndevices)]
print "Device initialized"
app = ManipulatorApplication(root, microscope, virtual_unit, ['Left','Right']).pack(side="top", fill="both", expand=True)
root.mainloop()