{
 "cells": [
  {
   "cell_type": "markdown",
   "metadata": {},
   "source": [
    "# Rekapitulation Lösung Dictionaries"
   ]
  },
  {
   "cell_type": "code",
   "execution_count": 2,
   "metadata": {},
   "outputs": [],
   "source": [
    "# Ausgangslage\n",
    "\n",
    "salaries_1 = {'Anna': 2000, 'Mark': 3000, 'Judith': 3500, 'Thomas': 2500}\n",
    "salaries_2 = {'Barbara': 3000, 'Elke': 3300, 'Michael': 2800, 'Johann': 2000}"
   ]
  },
  {
   "cell_type": "code",
   "execution_count": 3,
   "metadata": {},
   "outputs": [
    {
     "name": "stdout",
     "output_type": "stream",
     "text": [
      "{'Anna': 2000, 'Mark': 3000, 'Judith': 3500, 'Thomas': 2500}\n",
      "salaries_1: {'Anna': 2000, 'Mark': 3000, 'Judith': 3500, 'Thomas': 2500}\n",
      "salaries_all: {'Anna': 2000, 'Mark': 3000, 'Judith': 3500, 'Thomas': 2500, 'Barbara': 3000, 'Elke': 3300, 'Michael': 2800, 'Johann': 2000}\n",
      "Summe: 22100\n"
     ]
    }
   ],
   "source": [
    "salaries_all = {}\n",
    "\n",
    "for key in salaries_1:\n",
    "    salaries_all[key] = salaries_1[key]\n",
    "\n",
    "print(salaries_all)\n",
    "\n",
    "for key in salaries_2:\n",
    "    salaries_all[key] = salaries_2[key]\n",
    "\n",
    "print(\"salaries_1:\", salaries_1)\n",
    "print(\"salaries_all:\", salaries_all)\n",
    "\n",
    "\n",
    "print(\"Summe:\", sum(salaries_all.values()))"
   ]
  },
  {
   "cell_type": "code",
   "execution_count": 11,
   "metadata": {},
   "outputs": [
    {
     "name": "stdout",
     "output_type": "stream",
     "text": [
      "salaries_1: {'Anna': 2000, 'Mark': 3000, 'Judith': 3500, 'Thomas': 2500}\n",
      "salaries_all: {'Anna': 2000, 'Mark': 3000, 'Judith': 3500, 'Thomas': 2500}\n",
      "salaries_1: {'Anna': 2000, 'Mark': 3000, 'Judith': 3500, 'Thomas': 2500}\n",
      "salaries_2: {'Barbara': 3000, 'Elke': 3300, 'Michael': 2800, 'Johann': 2000}\n",
      "salaries_all: {'Anna': 2000, 'Mark': 3000, 'Judith': 3500, 'Thomas': 2500, 'Barbara': 3000, 'Elke': 3300, 'Michael': 2800, 'Johann': 2000}\n",
      "8\n"
     ]
    }
   ],
   "source": [
    "salaries_all = salaries_1.copy()\n",
    "\n",
    "print(\"salaries_1:\", salaries_1)\n",
    "print(\"salaries_all:\", salaries_all)\n",
    "\n",
    "salaries_all.update(salaries_2)\n",
    "\n",
    "print(\"salaries_1:\", salaries_1)\n",
    "print(\"salaries_2:\", salaries_2)\n",
    "print(\"salaries_all:\", salaries_all)\n",
    "\n",
    "print(len(salaries_all))"
   ]
  },
  {
   "cell_type": "code",
   "execution_count": 7,
   "metadata": {},
   "outputs": [
    {
     "name": "stdout",
     "output_type": "stream",
     "text": [
      "{'Anna': 2200.0, 'Mark': 3300.0000000000005, 'Judith': 3850.0000000000005, 'Thomas': 2750.0, 'Barbara': 3300.0000000000005, 'Elke': 3630.0000000000005, 'Michael': 3080.0000000000005, 'Johann': 2200.0}\n"
     ]
    }
   ],
   "source": [
    "# Alternative 1\n",
    "salaries_new = salaries_all.copy()\n",
    "salaries_new.update((key, value * 1.1) for key, value in salaries_new.items())\n",
    "\n",
    "# Alternative 2\n",
    "results = []\n",
    "for key, value in salaries_all.items():\n",
    "    results.append((key, value * 1.1))\n",
    "salaries_new = dict(results)\n",
    "\n",
    "# Alternative 3\n",
    "salaries_new = {}\n",
    "for key, value in salaries_all.items():\n",
    "    salaries_new[key] = value * 1.1\n",
    "\n",
    "print(salaries_new)"
   ]
  }
 ],
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