def trace_power_flow():
	"""
	Traces power flow through a series of connected transformers (UTs).
	- Reads the state of all switches.
	- Determines which components are energized and from which source.
	- Writes the results back to memory tags.
	"""
	
	# 1. Define the network structure in order from left to right
	# This makes it easy to find neighbors.
	# [Ignition_Common_IO_Gtwy]Yard/SATB1_YARD_UT-HS1
	
	#Temp suppres due to IO4 not available
	ut_names = ["UT-P4-1", "UT-P4-2", "UT-P4-3", "UT-P4-4", "UT-P4-5", "UT-HS2"]
	providers = [	"[Ignition_SATB1_IO4_default]Yard/SATB1_YARD_",
					"[Ignition_SATB1_IO4_default]Yard/SATB1_YARD_",
					"[Ignition_SATB1_IO4_default]Yard/SATB1_YARD_",
					"[Ignition_SATB1_IO4_default]Yard/SATB1_YARD_",
					"[Ignition_SATB1_IO4_default]Yard/SATB1_YARD_",
					"[Ignition_Common_IO_Gtwy]Yard/SATB1_YARD_"]
	
	# 2. Build the list of all tags we need to read
	# Using readBlocking for a single, efficient tag read
	tag_paths_to_read = [
				'[Ignition_Common_IO_Gtwy]Cables/SES/DS3A_W4',  # Assumes a tag for the source status
				'[Ignition_Common_IO_Gtwy]Cables/SES/DS3B_W4']
	idx = 0
	for name in ut_names:
		# Assuming your UDT instances are in a folder named 'UTs'
		base_path = providers[idx] + name
		tag_paths_to_read.append("{}/Source 1 Switch".format(base_path))
		tag_paths_to_read.append("{}/Source 2 Switch".format(base_path))
		idx+=1
	
	# 3. Read all tags at once
	try:
		tag_values = system.tag.readBlocking(tag_paths_to_read)
	except Exception as e:
		# Log error if tags can't be read
		system.util.getLogger("PowerTrace").error("Error reading tags: {}".format(e))
		return
	
	# Create a dictionary for easy access to tag values
	# e.g., values['UT-HS1']['Switch_L_Status']
	values = {}
	values['DS-3A_Live'] = tag_values[0].value
	values['DS-3B_Live'] = tag_values[1].value
	
	read_idx = 2
	for name in ut_names:
		values[name] = {
			'Switch_L_Status': tag_values[read_idx].value,
			'Switch_R_Status': tag_values[read_idx + 1].value
			}
		read_idx += 2

	# 4. The Tracing Algorithm
	# This dictionary will store the final state: e.g., energized_state['UT P1.2'] = 'DS-1A1'
	energized_state = {}
	
	# A queue for our BFS traversal, storing (ut_name, source)
	# Using a list as a queue: append to add, pop(0) to remove from front
	q = []
	
	# Initialize the queue with active sources
	if values['DS-3A_Live']:
		q.append( ("UT-P4-1", "DS-1A3") )
	if values['DS-3B_Live']:
		q.append( ("UT-HS2", "DS-1B3") )
	
	# Process the queue until it's empty
	visited = set() # Keep track of UTs we've already processed to prevent infinite loops
	while q:
		current_ut_name, source = q.pop(0)
		
		if current_ut_name in visited:
			continue
		
		visited.add(current_ut_name)
		energized_state[current_ut_name] = source
		current_ut_index = ut_names.index(current_ut_name)
		
		# Check for propagation to the RIGHT (-->)
		if current_ut_index < len(ut_names) - 1:
			neighbor_name = ut_names[current_ut_index + 1]
			# Condition: Current UT's right switch is closed AND Neighbor's left switch is closed
			if values[current_ut_name]['Switch_R_Status']['Value'] and values[neighbor_name]['Switch_L_Status']['Value']:
				if neighbor_name not in visited:
					q.append( (neighbor_name, source) )
		
		# Check for propagation to the LEFT (<--)
		if current_ut_index > 0:
			neighbor_name = ut_names[current_ut_index - 1]
			# Condition: Current UT's left switch is closed AND Neighbor's right switch is closed
			if values[current_ut_name]['Switch_L_Status']['Value'] and values[neighbor_name]['Switch_R_Status']['Value']:
				if neighbor_name not in visited:
					q.append( (neighbor_name, source))
	
	# 5. Prepare and write the results back to Ignition tags
	tag_paths_to_write = []
	values_to_write = []
	
	# Set UT states
	idx = 0
	for name in ut_names:
		is_energized = name in energized_state
		power_source = energized_state.get(name, 'None')
		tag_paths_to_write.append(providers[idx] + name + "/Data/isEnergized")
		values_to_write.append(is_energized)
		tag_paths_to_write.append(providers[idx] + name + "/Data/PowerSource")
		values_to_write.append(power_source)
		idx += 1
	
	line_tags_base_path = "[Ignition_Common_IO_Gtwy]Cables/UT/"
	#print energized_state
	# Loop through each connection between UTs
	for i in range(len(ut_names) - 1):
		ut1_name = ut_names[i]
		ut2_name = ut_names[i+1]
		line_energized = (ut1_name in energized_state and
							ut2_name in energized_state and
							#energized_state[ut1_name] == energized_state[ut2_name] and
							values[ut1_name]['Switch_R_Status']['Value'] and
							values[ut2_name]['Switch_L_Status']['Value'])
		#print ut1_name + " : " + str(ut1_name in energized_state) +" & "+str(values[ut1_name]['Switch_R_Status']['Value'])
		#print energized_state[ut1_name] + " = " + energized_state[ut2_name]
		#print ut2_name + " : " + str(ut2_name in energized_state) +" & "+str(values[ut1_name]['Switch_L_Status']['Value'])
		line_tag_name = "Line_{}_to_{}".format(ut1_name, ut2_name)
		# Construct the full tag path directly to the boolean tag
		full_tag_path = line_tags_base_path + line_tag_name
		# Add the path and the calculated value to our list for writing
		tag_paths_to_write.append(full_tag_path)
		values_to_write.append(line_energized)
		#print full_tag_path + " : " + str(line_energized)
	
	# Write all values in a single, efficient call
	if tag_paths_to_write:
		system.tag.writeBlocking(tag_paths_to_write, values_to_write)